A place for peculiar ideas.

Document text / 96 minute read

US11512021

Download preserved PDF ↓

Opening preserved document…

Extracted document text. Layout, formulas and symbols may not survive extraction; consult the preserved PDF for the original presentation.

Text extraction covers 30 pages, including 30 transcribed by optical character recognition. Some transcribed passages remain difficult to read; use the preserved page images to check them.

Page 1

a2) United States Patent
Fried et al.

US011512021B2

(10) Patent No.:
(45) Date of Patent:

US 11,512,021 B2
Nov. 29, 2022

(54) PREVENTING OR REDUCING PLANT
GROWTH BY BIOCEMENTATION

(71) Applicant: DUST BIOSOLUTIONS GMBH,
Planegg (DE)

(72) Inventors: Luitpold Fried, Munich (DE); Martin
Spitznagel, Munich (DE); Saskia
Pazur, Eichenau (DE); Philipp Sprau,
Planegg (DE)

(73) Assignee: DUST BIOSOLUTIONS GMBH,
Planegg (DE)

(*) Notice: Subject to any disclaimer, the term of this

patent is extended or adjusted under 35
USC. 154(b) by 0 days.

(21) Appl. No.: 16/787,673
(22) Filed: Feb. 11, 2020

(65) Prior Publication Data
US 2020/0172438 Al Jun. 4, 2020

Related U.S. Application Data

(63) Continuation of application No.
PCT/EP2019/053722, filed on Feb. 14, 2019.

(30) Foreign Application Priority Data
Feb. 14, 2018 (DE) .... seee 10 2018 103 314.1
(51) Int. Cl.
AOIN 25/34 (2006.01)
CO4B 28/02 (2006.01)
E02D 3/12 (2006.01)
C04B 103/00 (2006.01)

(62) US. CL
CPC veces . CO4B 28/02 (2013.01), AOIN 25/34
(2013.01); E02D 3/12 (2013.01), CO4B
2103/0001 (2013.01); CO4B 2103/0067
(2013.01)
(58) Field of Classification Search
CPC ...... AOIN 25/34; CO9K 17/40, CO4B 22/085;
C04B 22/124; CO4B 22/14: CO4B 22/16;
C04B 24/04; CO4B 24/08; C04B 24/10;
C04B 24/14; CO4B 24/26; CO4B 24/2623;
C04B 24/2641; CO4B 24/2652; CO4B
24/2676; CO4B 24/281; CO4B 24/38;
C04B 24/383; CO4B 24/00; CO4B 28/10;
C04B 40/0231; CO4B 2103/001; CO4B
2103/65; CO4B 2103/67; CO4B 2103/69
See application file for complete search history.

(56) References Cited
U.S. PATENT DOCUMENTS

5,332,673 A
7,402,623 BI*

/1994 Harris et al.
7/2008 Smith .. we CO4B 41/009

524/261
CO4B 28/10

106/638.

8,182,604 B2* 5/2012 Kuchars]

9,011,855 B2* 4/2015 Sonderberg Frederiksen .....

AOIN 59/00
424/139.1
2012/0137931 AL 6/2012 Chattopadhyay et al
2018/0072632 Al* 3/2018 C04B 40/0039
2020/0172438 Al 6/2020

FOREIGN PATENT DOCUMENTS

CN 101119942 A 2/2008
CN 105948610 A 9/2016
EP 3121156 Al 1/2017
EP 3565792 Al 11/2019
EP 3736254 Al — 11/2020
JP 2003047389 A 2/2003
wo 2006066326 Al 6/2006
WO WO-2006066326 Al 6/2006
Wo WO-2016145190 AL * 9/2016 ve... CO4B 14/22
WO 2019141880 Al 7/2019
OTHER PUBLICATIONS

Woodsman, “How to Prevent Weeds from Growing in Driveway
Cracks”, Nov. 14, 2017, texastreetrimmers.com, https:/Avww.
texastreetrimmers.com/prevent-weeds-from-growing-in-driveway-
cracks/ (Year: 2017).*

International Search Report and Written Opinion dated May 22,
2019 for corresponding PCT Application No. PCT/EP2019/053722.
Stocks-Fischer S et al. “Microbiological precipitation of CaCO3”
Soil Biology and Biochemistry, Pergamon, Oxford, GB, vol. 31, No.
IL, Oct. 1, 1999 (Oct. 1, 1999), pp. 1563-1571 DOL: 10.1016/S0038-
0717(99}00082-6 ISSN: 0038-0717, XP002372267.

Nemati M et al. “Modification of porous media permeability, using
calcium carbonate produced enzymatically in situ’ Enzyme and
Microbial Technology, Stoneham, MA, US, vol. 33, No. 5, Oct. 8,
2003 (Oct. 8, 2003), pp. 635-642 DOI: 10.1016/S0141-0229(03)00191-
1.

Stabnikov V et al. “Formation of water-impermeable crust on sand
surface using biocement,” Cement and Concrete Research, vol. 41,
2011, pp. 1143-1149.

Gomez M et al. “Field-scale bio-cementation tests to improve
sands,” Institution of Civil Engineers, vol. 168, 2014, pp. 206-216.
Office Action dated Sep. 25, 2018 for corresponding German
Application No. DE 10 2018 1030314.1.

Chinese Office Action dated Nov. 25, 2021 for corresponding
Chinese Application No. 201980019812.1

Canadian Office Action dated Oct. 25, 2021 for corresponding
Canadian Application No. 3071579.

Australian Office Action issued on Jul. 15, 2022, for corresponding
Australian Application No. 2019208442

V. Ivanov et al., “Calcite/aragonite-biocoated artificial coral reefs
for marine parks,” AIMS Environmental Science, vol. 4, No. 4,
2017, pp. 586-595.

LH. Jeong et al., “Biocementation of Concrete Pavements Using
Microbially Induced Calcite Precipitation,” Journal of Microbiol-
ogy and. Biotechnology, vol. 27, No. 7, 2017, pp. 1331-1335.

* cited by examiner

Primary Examiner — Ali Soroush
(74) Attorney, Agent, or Firm — Polsinelli PC

(57) ABSTRACT

The present invention primarily relates to the use of a
mixture capable of biocementation as a means of preventing
or reducing plant growth, preferably weed growth. The
invention also relates to a method for preventing or reducing
plant growth, preferably weed growth, on/in a substrate.

20 Claims, 8 Drawing Sheets

Page 2

U.S. Patent Noy. 29, 2022 Sheet 1 of $ US 11,512,021 B2

70,00
60,00
50,00

40,00

30,00

20,00

40,00 | |
0,00

day 0 day 7 day 14 day 21 day 28 day 35 day 42

Coverage rate weed growth [%]

70,00
60,00
50,00
40,00
30,00
20,00
10,00

0,00

Coverage rate weed growth [%]

SES. a. eS ee Bas. a
day 0 day 7 day 14 day 21 day 28 day 35 day 42

Page 3

U.S. Patent

Coverage rate weed growth [%]

76,00
60,00
50,00
40,00
30,00
20,06
10,00

0,00

Nov. 29, 2022 Sheet 2 of 8

US 11,512,021 B2

_
N NSN

_N sNSNN sNNSNSN  sNSNSN  sssssxccs
control A B B B

crystallopoietes cohnii

halodurans pseudofirmus

[lday 0 Nday 7 Nday 14 Nday 21 Sday 28 Qday 35 Qday 42

Figure 2

Page 4

U.S. Patent Noy. 29, 2022 Sheet 3 of $ US 11,512,021 B2

35,0
x -
= 30,0 N
: 25,0

> ry
& 20.0 HN

oO

5 A
2 15,0 LN

§ 10,0 NINE

&

a en \EANENE
oO

0,0 N SSS SL SUS
control mixture 2 mixture 3
[] dayo Rday7 N day 14 Q day 21 Qday 28 R day 35 N day 42

20
18
16
14
12
10

Breaking force [N]

Oop & OH

control mixture 2 mixture 3

Figure 3

Page 5

U.S. Patent Noy. 29, 2022 Sheet 4 of $ US 11,512,021 B2

60,0
= 50,0
5 40,0
a
mod
8 30,0 H
2 N
© NG
3 20,0
2 10,0 AN
° X

00 N reel sams
; control mixture 2 mixture 3

[}dayo Rday7 N day 14 Q day 21 Nday 28 Q day 35 § day 42

oe oc
oOo oO

~~
oS

>
oO

qi
oa

>
Q

(ee)
oS

Breaking force [N]

[xe]
So

—_
oS

control mixture 2 mixture 3

oS

Figure 4

Page 6

U.S. Patent

Coverage rate weed growth [%]

45,0
40,0
35,0
30,0
25,0
20,0
15,0
10,0

5,0

0,0

[] dayo {day 7

20
18
16
14
12
10

Breaking force [N]

Nov. 29, 2022 Sheet 5 of 8

US 11,512,021 B2

ENE

Ne

BNENE

control

mixture 4

EIS SEE <S SES

mixture 5

day 14 day 21 day 28 Qday 35 Q day 42

On &

control

mixture 4

Figure 5

mixture 5

Page 7

U.S. Patent

Coverage rate weed growth [%]

60,0
50,0
40,0
30,0
20,0
10,0

0,0

Nov. 29, 2022 Sheet 6 of 8 US 11,512,021 B2
cy
N SSS ES ASS
control mixture 4 mixture 5

[ldayo Nday7 Ydayi4 Qday 21 Yday 28 Q day 35 Y day 42

Breaking force [N]

70

60

50
40

30

20

10

control

mixture 4

Figure 6

mixture 5

Page 8

U.S. Patent Noy. 29, 2022

Coverage rate weed growth [%]

Coverage rate weed growth [%]

80,00
70,00
60,00
50,00
40,00
30,00
20,00
10,00

0,0

80,00
70,00
60,00
50,00
40,00
30,00

Sheet 7 of 8

US 11,512,021 B2

day0 day? day 14 day 21 day 28 day 35 day 42

20,00

10,60
0,0

Pec pee peed Ee
dayO day? dayi4 day 21 day28 day35 day 42

Figure 7

Treatment

Page 9

U.S. Patent

Coverage rate weed growth [%]

Coverage rate weed growth [%]

sgictnsnany

45,0
40,0
35,0
30,0
25,0
20,0
15,0
10,0

5,0

0,0

45,0
40,0
35,0
30,0
25,0
20,0

Nov. 29, 2022 Sheet 8 of 8 US 11,512,021 B2

AL

day 0

I ‘dayi4 day21 day 28 day 35 day 42

15,0

10,0
5,0

0.0~Gayg

ce

Pe]
day7 day14 day21 day 28 day 35 day 42

Figure 8

Page 10

US 11,512,021 B2

1

PREVENTING OR REDUCING PLANT
GROWTH BY BIOCEMENTATION

CROSS-REFERENCE TO RELATED
APPLICATIONS

This application is a continuation application (under
35 U.S.C. § 111(a)) of PCT/EP2019/053722, filed Feb. 14,
2019, which claims benefit of German Application No. 10
2018 103 314.1, filed Feb. 14, 2018, which are incorporated
herein by reference in their entireties.

The present invention primarily relates to the use of a
mixture capable of biocementation as a means of preventing
or reducing plant growth, preferably weed growth, on/in a
substrate. The invention also relates to a method for pre-
venting or reducing plant growth, preferably weed growth,
on/in a substrate.

Further aspects and preferred forms of the present inven-
tion result from the following explanations, the attached
examples and in particular the attached patent claims.

The uncontrolled growth of weeds is a constant problem
in agriculture, in cities and municipalities and in the area of
home gardens, as it leads to yield losses in agriculture and
is perceived as very disturbing and unattractive on paths and
other surfaces. For this reason, weeds are combated and/or
destroyed by thermal methods such as flaming, manual
weeding by hand or with the aid of various tools or chemical
agents. However, it can currently be observed that more and
more resistancies are being developed against many of the
existing products and they must therefore be used repeat-
edly, which further increases the cost of their use. In
addition, the treated areas are quickly repopulated by uncon-
trolled seed inflow.

Tt was therefore the primary object of the present inven-
tion to provide a means for preventing or reducing unwanted
plant growth that would overcome the above problems.

According to the invention, this primary object is solved
by using a mixture capable of biocementation as a means for
preventing or reducing (through the processes of biocemen-
tion, respectively) plant growth, preferably weed growth.

In the context of the present text, the term biocementation
stands for an essentially natural solidification and/or hard-
ening of (permeable) substrates (as defined below in the
context of the method according to the invention). This
prevents or reduces plant growth on/in these substrates.
Biocement within the scope of this text is the product of the
biocementation as defined herein.

According to a preferred embodiment, said essentially
natural solidification and/or hardening is a process in which

parts of the substrate on/in which plant growth is to be 5

reduced or prevented are bound together by one or more
binders contained in the mixture to be used according to the
invention and/or formed from its components, thereby
effecting solidification and/or hardening (biocementation) of
the substrate or parts of the substrate. According to a
particularly preferred embodiment, said natural solidifica-
tion and/or hardening is a process in which (living) organ-
isms, parts thereof or enzymes, which are preferably
obtained from and/or produced by said organisms or parts
thereof, are used to form carbonate, induce carbonate for-
mation and/or catalyse carbonate formation. The formed
carbonates connect the parts of the substrate or the substrate
on/in which the plant growth is to be reduced or prevented,
whereby a solidification and/or hardening of the substrate or
parts thereof takes place. The carbonates formed within the
scope of this text therefore preferably represent a minimum.
component of the biocement. Optionally or alternatively, the

0

a

8

40

4

35

2

addition of certain additives (as defined below) can (addi-
tionally) solidify and/or harden the substrate or parts of the
substrate on/in which plant growth is to be reduced or
prevented. According to a further embodiment, the bioce-
ment may therefore also consist of or comprise the additives
or substances derived thereof to be used according to the
invention (as defined below).

Therefore, according to a preferred embodiment, removal
of the substrate on/in which plant growth, preferably weed
growth, is to be reduced or prevented is not necessary to
prevent or reduce plant growth and is therefore preferably
not part of a use according to the invention, especially since
it is precisely solidification and/or hardening of the substrate
(through the processes of biocementation, respectively) that
prevents or reduces plant growth, preferably weed growth.

According to another preferred embodiment, removal of
the substrate on/in which plant growth, preferably weed
growth, is to be reduced or prevented, from its original
location is followed by mixing said substrate with the
mixture capable of biocementation (as described herein) at
a different location (e.g. in a mixer) and (re)application of
the resulting mixture at the original location (or alternatively
at a different location), where biocementation is to be carried
out.

Furthermore, in the context of the use according to the
invention as described herein, advantageously no compact-
ing of the substrate on/in which the plant growth is to be
reduced or prevented, or of the mixture of substrate and
mixture capable of biocementation (as described herein), or
of the biocement layer formed, is necessary, in order to
achieve a prevention or reduction of plant growth, preferably
the growth of weeds, and thus preferably also not a com-
ponent of a use according to the invention.

In the context of the present text, the term plant stands for
land plants, i.e. the monophyletic group of embryophyta
characterized by a common, functionally understood feature
complex of several synapomorphies. Their main groups are:
the liverworts (Marchantiopsida), hornworts (Anthocero-
topsida) and mosses (Bryopsida), which are often grouped in
the paraphyletic moss group, lycopods (lycopsida), horse-
tails (equisetopsida) and ferns in the narrow sense (Filicop-
sida), as well as the monophyletic seed plants (Sperma-
tophyta) with the angiosperms and the different development
lines of the gymnosperms.

In the context of the present text, the term weed stands for
all plants (including mosses and ferns) of the spontaneous or
undesirable accompanying vegetation in cultivated plants,
grassland or (home) gardens which develop from the seed
potential of the soil (as first shoots or re-sprouts), via root
runners, plant parts or seed inflows, and which are prefer-
ably not specifically cultivated there. Synonyms for weed
are wild herb and wild plant. In the context of the present
text, the term cultivated plants stands for plants whose
growth is desired.

The process of microbial biocementation, for example, is
described in the patent application WO 2006/066326 Al.
The patent application discloses a process for forming
high-strength biocement in a permeable starting material,
wherein the starting material is admixed with an effective
amount of (i) a urease-producing microorganism, (ii) urea,
and (iii) calcium ions. The urease-catalyzed conversion of
urea into carbonate and its reaction with the calcium ions
provided produces calcium carbonate, which solidifies the
starting material. It is described inter alia that the process
disclosed therein is suitable for applications in mining, civil
engineering or the provision of special materials.

Page 11

US 11,512,021 B2

3

WO 2016/010434 Al describes a process for producing a
self-healing cementitious material comprising mixing a
cementitious starting material, a healing substance and a
fibrous reinforcing material, wherein the healing substance
comprises bacterial material and the fibrous reinforcing
material comprises a biodegradable polymer. The bacteria
used there are able to provide carbonates or phosphates and
can be denitrifying bacteria according to one embodiment.

The solution approach of the present invention is based on
the use of biocementation for mechanical suppression, i.e.
prevention or reduction, of plant growth, preferably weed
growth, by biological solidification of the substrate on/in
which the plant grows. The mixture to be used according to
the invention is therefore referred to below as a weed
suppressing agent. Depending on the individual components
of the mixture to be used according to the invention (see
below), in addition to mechanical suppression, i.e. preven-
tion or reduction, of plant growth, other processes (as
described below) can also play a role in suppressing the
plant growth.

According to an embodiment, a use of the mixture as
described herein according to the invention may take place
ina locally restricted area, so that in the area not treated with
the mixture (as described herein), where no solidification
and/or hardening of the substrate on/in which the plants
grow takes place, cultivated plants may (continue to) be
cultivated.

According to another embodiment, it is conceivable to
treat the substrate to be treated on/in which the plants grow
with a certain amount or type of mixture (as described
herein) so that the resulting solidification and/or hardening
of said substrate allows the growth of cultivated plants, but
prevents or reduces the growth of weeds. In this case—but
also generally in connection with the present invention—the
mixture to be used according to the invention may also
contain fertilisers which stimulate the growth of the said
cultivated plants.

A preferred embodiment therefore refers to a use of a
mixture according to the invention as described herein,
where the resulting solidification and/or hardening of the
substrate on/in which the plant grows allows the growth of
one or more cultivated plants, but prevents or reduces the
growth of weeds.

In an exemplary experiment, a field with arable soil was
ploughed and fertilized, young plants of kohlrabi were
inserted into the arable soil and the arable soil was watered
intensively. On the following day, a mixture capable of
biocementation (as described herein, see e.g. example sec-
tion below) was applied to the arable soil either as a solid

mixture by hand or as a liquid mixture with the aid of a crop 5

protection sprayer. In contrast to a control in which only
water was applied instead of a mixture capable of bioce-
mentation (as described herein), good weed suppression was
achieved with only isolated germination of weeds while the
cultivated plant (kohlrabi) continued to grow.
Advantageously, a use the mixture according to the inven-
tion for the purposes as described herein leads to a thickness
of the biocement layer that is particularly suitable. Prefer-
ably a biocement layer with a thickness of at least 1 mm is
obtained, preferably of at least 3 mm, more preferably of at
least 10 mm. It is further preferred if the layer thickness is
maximally 100 mm, preferably maximally 50 mm, further
preferred maximally 35 mm, further preferred maximally 30
mm. As a result, it is particularly preferred if the layer
thickness of the total biocement layer formed is in the range
from 1 mm to 100 mm, preferably from 10 mm to 50 mm,
more preferably from 10 mm to 35 mm, more preferably

S

a

w
8

w

8

40

45

3:

2
s

4

from 10 to 30 mm. The layer thickness of the biocement
layer comprises the area of the substrate which is solidified
by the addition of the mixture. The thickness of the bioce-
ment layer can be determined by manual measurement after
mechanical breaking of the layer using a caliper gauge.
Alternatively, different (non-destructive) measuring meth-
ods from construction, agriculture, geology or other fields of
application can be used (e.g. hand-held device MIT-SCAN-
12).

According to a preferred embodiment, a use according to
the invention of the mixture as described herein leads to a
biocement layer that is permeable to water, i.e. water-
permeable or water-semipermeable. This is particularly
advantageous because, for example, rainwater can penetrate
into the biocement layer without hindrance and flow off even
in the biocemented area. The water permeability of a sample
is conventionally stated as the water flow through the sample
in a defined period of time. It can be expressed as perme-
ability rate (in cm/h, mm/h or cm/day) or alternatively as
coeflicient of permeability (in m/s). An indication of the
coeflicient of permeability allows a classification of a
sample, preferably a soil sample, for example into the
categories (water)permeable, (water)semipermeable and
(water)impermeable.

In the context of the present text, the term “waterperme-
able biocement layer” means a biocement layer with a
(water) coeflicient of permeability greater than 10-5 to 10°
m/s, and the term “watersemipermeable biocement layer”
for a biocement layer having a (water) coefficient of per-
meability of greater than 10°? to 10-° m/s, and the term
“waterimpermeable biocement layer” for a biocement layer
having a (water) coefficient of permeability of 10°1 (or less)
to 10°? m/s. Common methods for determining the coefii-
cient of permeability comprise laboratory methods (e.g. ram
core probing and subsequent determination of water satu-
rated permeability in the laboratory) and field methods (e.g.
determination of the infiltration rate with a double ring
infiltrometer).

A preferred embodiment relates to the use of a mixture as
defined herein, wherein the biocement layer formed has a
(water) coeflicient of permeability of greater than 10-° to 10°
m/s, preferably greater than 10~° to 10-? m/s, more prefer-
ably greater than 10~* to 10°? m/s.

The use according to the invention shows a robust func-
tionality under real (environmental) conditions, is easy to
apply (often by a single application) and allows the renun-
ciation or reduction of chemical herbicide(s). Furthermore,
it can be used in combination with existing products or
processes for combating weeds. Advantageously, the use
according to the invention is reversible, i.e. the biocemen-
tation of the substrate or parts of the substrate can be
reversed if necessary, for example by the application of
suitable acids or by mechanical breaking as well as by
weathering and natural degradation. In this way, the sub-
strate or parts of the substrate can be made accessible again
for the cultivation of cultivated plants.

A preferred embodiment therefore relates to the use of a
mixture as defined herein, wherein the biocementation of the
substrate or parts of the substrate may be reversed or
preferably are reversed.

Another preferred embodiment relates to the use of a
mixture as defined herein, wherein the mixture comprises or
consists of one or more organisms and/or enzymes. Prefer-
ably, the use according to the invention relates to a use as
described above, wherein the mixture comprises or consists
of the following components:

Page 12

US 11,512,021 B2

5

(i) one or more organisms and/or enzymes capable of
forming carbonate and/or of inducing and/or catalyzing
carbonate formation,

(ii) one or more substances for the formation of carbonate,

(iii) optionally: one or more cation sources; and

(iv) optionally: one or more additives.

According to a preferred embodiment, the organism or
organisms in component (i) of the mixture to be used
according to the invention is/are one organism/several
organisms which, when assay A comprising the following
steps is carried out

Assay A
(i) providing and contacting an organism to be characterised

or a mixture of organisms to be characterised, one or more

substances for the formation of carbonate (and optionally
further substances) and optionally a substrate,

(ii) providing a means for detecting a ureolysis and/or
carbonate formation,

(iii) combining the mixture resulting from step (i) with the
means from step (ii), and

(iv) determining from the means from step (ii) whether a
ureolysis and/or carbonate formation is present,

leads to the detection of a ureolysis and/or carbonate for-
mation in step (iv), preferably—if a substrate has been
provided—the detection of biocementation, preferably one
that is sufficient to prevent or reduce plant growth, prefer-
ably the growth of weed (for details on controlling preven-
tion or reduction of plant growth see below, example sec-
tion).

Advantageously, in the framework of Assay A both ure-
olytic and non-ureolytic organisms can be tested for their
ability to adequately biocementize.

The following explanations may be helpful in the selec-
tion of organisms suitable in the context of a use according
to the invention.

The substance(s) for the formation of carbonate to be
provided in step (i) of Assay A as defined herein and the
substrate, which is solidified or hardened by the biocemen-
tation, to be optionally provided are further defined below,
also with the aid of selected and preferred examples. The
optional further substances may be nutrient media, nutrient
sources, cation sources (as described further below in the
text) and/or additives (as described further below in the
text).

In step (i) of Assay A as defined herein, e.g. pure cultures
of the organism to be characterized (e.g. from strain collec-
tions) can be provided and/or the organism to be character-
ized or the mixture of organisms to be characterized can e.g.
be isolated from a suitable sample (e.g. soil sample) using a

nutrient medium (e.g. Christensen urea agar, B4 medium or 5

M-3P medium) and cultured to a cell culture suitable for
further investigation. The nutrient medium used for isolation
and cultivation may be liquid or solid. The skilled person
knows that e.g. the nutrient medium can be varied according
to the requirements of the organism(s). The organism(s) are
preferably cultured to a cell density between 1x10’ and
1x10!? cells/ml. The skilled person knows that, for example,
the cultivation temperature and the medium composition are
selected according to the needs of the organism or the
mixture of organisms. The provided or prepared cell culture
is then contacted with the substance(s) for the formation of
carbonate (and optionally other substances) and optionally a
substrate to obtain a mixture which is then combined in step
(iii) with the means from step (ii).

The means for detecting a ureolysis and/or carbonate
formation in step (ii) of Assay A as defined herein is for
example a pH indicator, a device and/or one or more

S

a

w
8

w

8

35

40

4

60

6

substance(s) for measuring urease activity, a device and/or
one or more substance(s) for measuring the amount of
carbonate formed by the biocementation, or a device for
measuring the degree of solidification of the substrate (by
the biocementation).

The determination of whether a ureolysis and/or carbon-
ate formation is present in step (iv) of Assay A as defined
herein, in particular the detection of a biocementation,
preferably a biocementation suflicient to prevent or reduce
plant growth, preferably weed growth, may take place
qualitatively or preferably quantitatively.

A preferred method for said determination is, for example,
the addition of a suitable pH indicator (e.g. phenol red,
preferably at a concentration of 15 mg/L) to the mixture
resulting in step (i). In the presence of a ureolysis and/or
carbonate formation, the pH of the mixture increases, lead-
ing to a change in the colour of the indicator (e.g. pink
colouring in the case of phenol red).

If a cation source, preferably a calcium source, is added
to the mixture of step (i) (in addition to the one or more
substance(s) for the formation of carbonate), lime crust
formation usually occurs around the colonies or on the
colonies of the organism(s) in case of the presence of
ureolysis and/or carbonate formation in solid media. In the
case of liquid culture media, lime precipitation usually
occurs if a cation source, preferably a calcium source (e.g.
CaCl,), and a carbonate source (e.g. urea) are sufficiently
available. This lime crust formation or lime precipitation can
also serve as optical evidence for ureolysis and/or carbonate
formation, or the said lime crust formation or lime precipi-
tation can be analyzed by qualitative and/or quantitative
carbonate determination, preferably with the aid of (semi-)
quantitative carbonate determination according to Scheibler
ora further development of this method (e.g. as in Horvath,
B. et al., A Simple Method for Measuring the Carbonate
Content of Soils, Soil Science Society of America Journal
2005, 69, 1066-1068).

Another preferred method for said determination is, for
example, a measurement of the urease activity of the organ-
ism or the mixture of organisms. The organism to be
analyzed or mixture of organisms to be analyzed is thereby
mixed, amongst others, with buffered urea (e.g. 1.5 M urea
in 0.1 M Tris-HCl, pH 7.5) and the formation of the resulting
ammonium ions is measured conductometrically as the
increase of the measurement signal over time and the urease
activity is calculated (as e.g. described in V. S. Whiffin,
Microbial CaCO, Precipitation for the production of Bio-
cement, Dissertation, 2004, Murdoch University, Western
Australia). The urease activity preferably lies between
1x10-7 to 1x10-'! mM hydrolyzed urea/min/cm/cells/ml,
further preferred between 1x10™° to 1x10™!° mM hydro-
lyzed _urea/min/em/cells/ml, further preferred between
1x10~ to 1x10 mM hydrolyzed urea/min/cm/cells/ml.
The former corresponds approximately to a urea hydrolysis
rate of 0-300 mM hydrolysed urea/min, depending on the
number of cells used. Another preferred method for said
determination is, for example, the measurement of the
carbonate quantity formed by the biocementation, preferably
with the aid of the (semi-) quantitative determination of
carbonate according to Scheibler. The mixture to be inves-
tigated is preferably incubated for 48 h openly at room
temperature (25° C.). A precipitated pellet can then be
obtained by centrifugation and drying for further use. The
dried pellet can be used for (semi-)quantitative detection of
the calcium carbonate formed, preferably by the carbonate
determination according to Scheibler. Optionally, the dried
precipitate can be weighed beforehand and the precipitation

Page 13

US 11,512,021 B2

7

efficiency be calculated. Optionally, an additional qualitative
determination of ureolysis and/or carbonate formation can
be performed in parallel. Phenol red (15 mg/L) can be added
to the mixture from step (i). The supernatant to be discarded
when extracting the pellet is then usually pink coloured
when ureolysis and/or carbonate formation is present.

Another preferred method for said determination is, for
example, the measurement of the degree of solidification of
the substrate (by the carbonate produced during biocemen-
tation). A suitable substrate for this is e.g. quartz sand,
preferably with a grain size of 0 to 2 mm (as model
substrate). The remaining components of the mixture from.
step (i) are preferably applied to or introduced into the
substrate in an amount of the resulting mixture of 5 I/m? (in
the case of a liquid mixture). Subsequent incubation should
be performed openly and at room temperature or above
room temperature for at least 2 days (preferably for at least
10 days). The strength of the biocement layer formed is then
determined by fracture mechanical analysis using a digital
(breaking) force gauge in accordance with DIN EN 196-1:
2005-05. In comparison to the control (application of a
comparative mixture without organism or organisms onto
the substrate), differences in the breaking force of 23 N (or
20.01 MPa), preferably of =30 N (or 20.1 MPa), should be
detectable.

Within the scope of Assay A, the thickness of the bioce-
ment layer can also be determined with the aid of a caliper
gauge: in the case of successful solidification, it should
preferably amount to an average of 23 mm in the investi-
gated area.

According to a preferred embodiment, the organism or the
organisms in component (i) of the mixture to be used
according to the invention is/are one organism/several
organisms, which in step (iv) of Assay A as defined herein
in relation to two or more of the determination methods
described above, preferably three or more, most preferably
four or more, most preferably all determination methods,
lead(s) to the detection of a ureolysis and/or carbonate
formation, preferably a biocementation, preferably one suf-
ficient to prevent or reduce plant growth, preferably weed
growth (for details on controlling the prevention or reduc-
tion of plant growth see below, example section).

Preferred is a use as described above, wherein the mixture
is present in liquid form, as a gel, paste or powder.

The mixture to be used according to the invention may be
present or used in the form of a liquid, gel-like, paste-like or
powdery mixture or in the form of two, three, four or more
liquid and/or gel-like and/or paste-like and/or powdery
pre-mixtures which are present separately from each other
and which are mixed together before or during use.

Particularly in the form of a powder, the mixture or
pre-mixtures advantageously have a particularly long stor-
age stability, preferably of at least 12 to 24 months.

A powder form of the mixture or pre-mixture can be
obtained by standard processes known to the skilled person,
e.g. spray drying, freeze drying, (low-temperature) vacuum
drying, fluid bed drying and/or with the aid of filtration with
filtering aids.

Tn the context of this text, powdery means that the content
of liquid components, preferably of water, in the mixture is
10 wt. % or less, preferably 5 wt. % or less, preferably 2.5
wt. % or less, more preferably 1.0 wt. % or less, most
preferably 0.1 wt. % or less, based on the total weight of the
mixture or pre-mixture to be used according to the invention.

The content of liquid components, preferably of water, in
the mixture or pre-mixture can be determined by standard
methods known to the skilled person. For example, a gra-

S

a

w
8

w

3

8

40

4

5

B

8

vimetric determination of the content of the liquid compo-
nents can be performed by weighing the sample taken,
heating it to a temperature above the boiling point of the
liquid components for a suflicient period of time for drying
and then weighing it again. From the difference in weight
before and after drying, the content in % by weight of liquid
components, preferably of water, can be determined.

According to a further embodiment, the mixture to be
used according to the invention may also be present or used
in the form of a gel-like or paste-like mixture or in the form
of two, three, four or more separate solid and/or liquid
and/or gel-like and/or paste-like pre-mixtures which are
mixed together before or during use.

Preferred is a use as described above, wherein one or the,
several or all organism(s) is/are selected from the group
consisting of microorganisms, preferably is/are selected
from the group consisting of microorganisms of the phylum
Firmicutes, preferably of the class Bacilli, preferably of the
order Bacillales, preferably of the families Planococcaceae
or Bacillaceae, preferably of the genera Sporosarcina,
Tysinibacillus or Bacillus, preferably selected from the
species Sporosarcina pasteurii, Sporosarcina ureae, Lysini-
bacillus sphaericus, Lysinibacillus fusiformis, Bacillus
megaterium, Lysinibacillus sp., Bacillus pseudofirmus,
Bacillus halodurans or Bacillus cohnii, and microorganisms
of the phylum Proteobacteria, preferably of the classes
Alphaproteobacteria, Gammaproteobacteria, Deltaproteo-
bacteria or Epsilonproteobacteria, preferably of the orders
Enterobacteriales, | Myxococcales, | Campylobacterales,
Pseudomonadales or Caulobacterales, preferably of the
families Enterobacteriaceae, Myxococcaceae, Helicobacte-
raceae, Pseudomonadaceae or Caulobacteraceae, preferably
of the genera Proteus, Myxococcus, Helicobacter,
Pseudomonas or Brevundimonas, preferably selected from
the species Proteus vulgaris, Proteus mirabilis, Myxococcus
xanthus, Helicobacter pylori, Pseudomonas aeruginosa or
Brevundimonas diminuta; and microorganisms of the phy-
lum Actinobacteria, preferably of the class Actinobacteria,
preferably of the order Actinomycetales, preferably of the
families Brevibacteriaceae or Micrococcineae, preferably of
the genera Brevibacterium or Micrococcaceae, preferably
selected from the species Brevibacterium linens or Arthro-
bacter crystallopoietes, and microorganisms of the phylum
Cyanobacteria, preferably of the class Cyanobacteria, pref-
erably of the order Synechococcales, preferably of the
family Synechococcaceae, preferably of the genus Syn-
echococcus, preferably of the species Synechococcus; and
aerobic bacteria, anaerobic bacteria, facultative anaerobic
bacteria and their intermediates.

This includes all variants, serotypes, mutants and spores
and any derived genetically modified microorganisms.

The aforementioned organism(s), preferably microorgan-
isms, may be present (together or separately) in liquid(s)
such as buffer solutions, solvents, culture media and/or
mixtures thereof, which may also be deep-frozen or be
present in powder form.

According to the present invention, the organism or
organisms capable of forming carbonate and/or of inducing
and/or catalyzing carbonate formation is or are part of the
mixture used.

Alternatively, it is conceivable and also disclosed in the
context of this text that (indigenous) organisms that are
present in the substrate, preferably soil in/on which the plant
growth takes place, or are isolated from said substrate,
cultivated in the laboratory and then reintroduced onto/into
the substrate, are capable of forming carbonate and/or of
inducing and/or catalyzing carbonate formation. In this case,

Page 14

US 11,512,021 B2

9

alternative or equivalent embodiments are conceivable (and
accordingly included herein as according to the invention) in
which the organisms of the mixture to be used according to
the invention and the (indigenous) organisms in/on the
substrate together form the carbonate, induce and/or catalyse
carbonate formation, or in which the mixture to be used does
not itself contain any organisms capable of forming carbon-
ate, inducing and/or catalyzing carbonate formation.
According to a preferred embodiment, component (i) of the
mixture to be used according to the invention comprises or
consists of a combination of one organism or several organ-
isms capable of forming carbonate, inducing and/or cata-
lyzing carbonate formation, and those unable to do so.

According to a preferred embodiment, component (i) of
the mixture to be used according to the invention comprises
or consists of a combination of aerobic bacteria, anaerobic
bacteria and/or facultative anaerobic bacteria and/or their
intermediates.

According to another preferred embodiment, component
(i) the mixture to be used according to the invention com-
prises or consists of a combination of one organism or
several organisms capable of ureolytically forming carbon-
ate, ureolytically inducing and/or catalyzing carbonate for-
mation, and those not capable of ureolysis or not at all
capable of forming carbonate and/or inducing and/or cata-
lyzing carbonate formation.

The skilled person thereby knows that biocementation (as
defined herein) is particularly efficient in a certain cell
number spectrum of the organisms used when a mixture (as
defined herein) is used according to the invention. Accord-
ing to our own investigations, the cell count of the organism
or organisms in the mixture to be used according to the
invention is preferably at least 10” cells/mL, more preferably
at least 10* cells/mL, and/or preferably at most 10'* cells/
mL, more preferably at most 10'° cells/mL, most preferably
at most 10” cells/mL. According to a preferred embodiment,
the number of cells of the organism or organisms in the
mixture to be used according to the invention is 10° to 10°
cells/mL.

Ause as described above is preferred, wherein one or the,
several or all of the enzymes is/are selected from the group
consisting of urease, asparaginase, carbonic anhydrase and
metabolic enzymes.

Metabolic enzymes in the context of the present text are
preferably enzymes of the metabolism of one or more
(micro-)organisms as described herein, which, for example
by conversion of acetate and/or lactate, are capable of
forming carbonate and/or of inducing and/or catalyzing

carbonate formation. Preferably, one or more organisms (as 5

defined above) capable of producing one or more of the
above enzymes is/are used in component (i) of the mixture
to be used according to the invention, or preferably the
above enzymes are obtained or released from the above
organisms.

If the organism or organisms used is or are pathogenic
organisms, it is preferable within the scope of the present
text if in component (i) of the mixture to be used according
to the invention only the non-pathogenic enzymes derived
therefrom or released therefrom are used.

According to another preferred embodiment, combina-
tions of enzymes obtained or released from the above
organisms with enzymes of non-microbial origin (e.g. veg-
etable enzymes) may be used in component (i) of the
mixture to be used according to the invention. For example,
the enzyme urease can be obtained from soybeans and used
according to the invention.

S

a

w
8

w

8

&

3:

6

s

B

10

According to another preferred embodiment, combina-
tions of one or more of the above-mentioned organisms
capable of forming carbonate and/or of inducing and/or
catalyzing carbonate formation with one or more of the
above-mentioned enzymes capable of forming carbonate
and/or of inducing and/or catalyzing carbonate formation
may be used in component (i) of the mixture to be used
according to the invention.

Carbonates can be generated by various metabolic pro-
cesses with the help of the above-mentioned enzymes. For
example, aerobic metabolism of organic carbon sources may
lead to ammonification (e.g. enzyme asparaginase) or het-
erotrophic metabolism of organic carbon sources (e.g. cal-
cium lactate or calcium acetate) may take place. Both
processes provide carbonates. Aerobic and anaerobic pho-
tosynthesis can also be used to form carbonates, as can
anaerobic denitrification, anaerobic sulfate reduction and
(an)aerobic methane oxidation.

The biocementation with the aid of the mixture to be used
according to the invention may therefore be based on one or
more of the above metabolic processes.

Therefore, a use as described above is preferred, wherein
one or the, several or all substances for the formation of
carbonate is/are selected from the group consisting of urea
and salts thereof, organic acids such as lactic acid and salts
thereof, preferably carboxylates, and esters thereof, gluconic
acid and salts thereof, preferably carboxylates, and esters
thereof, acetic acid and salts thereof, preferably carboxy-
lates, and esters thereof, formic acid and salts thereof,
preferably carboxylates, and esters thereof, peptides, pref-
erably containing asparagine, glutamine and/or glutamic
acid, amino acids, preferably asparagine, glutamine and
glutamic acid, and salts thereof, preferably carboxylates, and
esters thereof, vegetable and animal complex substrates, in
particular peptone, yeast extract, meat extract, nutrient broth
and casamino acid, industrial waste streams, in particular
maize steep liquor, lactose mother liquor, protein lysates,
preferably from peas, meat or tomatoes, anaerobic sub-
strates, preferably carbon dioxide and methane.

Furthermore preferred is a use as described above,
wherein one or the, several or all cation sources is/are
selected from the group consisting of organic and inorganic
calcium salts, preferably calcium nitrate, calcium acetate,
calcium lactate and calcium chloride, magnesium salts,

5 manganese salts, zinc salts, cobalt salts, nickel salts, copper

salts, lead salts, iron salts, cadmium salts, polymers, pref-
erably cationic polymers, heavy metal cations, light metal
cations, radioactive cations and mixtures thereof.
According to the present invention, the cation source(s)
may or may not be contained in the mixture to be used
according to the invention. If they are not contained in the
mixture, they may be present on/in or added to the substrate
on/in which the plant grows to enable biocementation.
Preferred is also a use as described above, wherein one or
the, several or all of the additives is/are selected from the
group consisting of the following substances/substance mix-
tures (preferably as long as it/they is/are not already con-
tained in component (ii)) nutrients; (bio-)polymers, prefer-
ably polyhydroxybutyrate (PHB), polylactide (PLA),
polybutylene succinate (PBS), polyacrylic acid (PM),
polymethacrylate (PMA), poly(2-hydroxyethylmethacry-
late) (PHEMA), polyvinyl alcohol (PVOH), polyvinyl
acetate (PVAC), polyvinyl pyrrolidone (PVP), poly(2-ethyl-
2-oxazoline), polystyrene (PS), polyamide, copolymers,
polyamino acids, cellulose and derivatives thereof, starch
and derivatives thereof, lignins and derivatives thereof,
pectins and derivatives thereof, natural adhesives, in par-

Page 15

US 11,512,021 B2

1

ticular gum arabic, latex, rubber and derivatives thereof,
chitin and derivatives thereof, chitosan and derivatives
thereof, cyclodextrins and derivatives thereof, dextrins and
derivatives thereof; hydrogel formers, preferably xanthan
gum, alginates and agar agars; cold soluble and/or warm
soluble (plant) glues; calcium carbonates and mixtures con-
taining calcium carbonates, preferably mother-of-pearl,
amorphous calcium carbonates, precipitated calcium car-
bonate, aragonite, calcite, vaterite and mixtures and deriva-
tives thereof; polysaccharides and extracellular polymeric
substances (EPS), preferably microbial exopolysaccharides,
preferably containing or consisting of maleic acid, acetic
acid, lactic acid, lactose, sucrose, glucose, fructose and/or
inulin; protein sources, fibres and fibrous materials, prefer-
ably casein, albumin, yeast extracts, peptones, cellulose
fibres, wood fibres, wood cellulose fibres; residues and
industrial materials, preferably maize steep liquor, lactose
mother liquor, protein lysates, molasses, protein waste,

preferably from yeast production, meat production, dairy 2

industry and paper production; silicates and derivatives
thereof; acrylates and derivatives thereof, water glasses and
water glass-like binders; cements and cement additives,
preferably sand, lime and derivatives thereof, aluminium
oxide, calcium oxide, calcium hydroxide, aluminium
hydroxide, ash, preferably fly ash and bone ash, microsilica,
kaolins, bentonites, filling materials, preferably white lime
(hydrate), limestone crushed sand and limestone powder:
resins and epoxides; natural and chemical herbicides; fun-
gicides; molluscicides; insecticides; hydrophobizers and
wax emulsions; emulsifiers; binders; thixotropic agents;
crystallization nuclei and crystallization modifiers, fatty
acids; minerals and trace elements; salts, preferably phos-
phates and sulphates; rocks, preferably pumice stone and
slate powder; bacteria capable of forming polymers; and
substance(s) modifying the biocementation.

In the context of the present invention, the additive(s)
preferably are either substances which influence the process
of biocementation itself (e.g. nutrients) or substances which
influence the resulting product of the biocementation, i.e. the
properties of the biocement (e.g. its water resistance) or
substances which influence the plant whose growth is sup-
pressed (e.g. herbicides).

Examples of substances that can influence the properties
of the biocement are preferably additives to be used accord-
ing to the invention, which are capable of (additionally)
solidifying and/or hardening the substrate or parts of the
substrate on/in which the plant growth is to be reduced or
prevented. These may, for example, be sugar molecules (as

defined above) or polymers formed by bacteria. As 5

described above, said additives to be used according to the
invention are in this case a—if applicable sole—component
of the biocement (alternatively to or in addition to the
preferably formed carbonate(s)).

According to the present invention, the additive(s) may be
present in the mixture to be used according to the invention
(ie. be part of the mixture to be used) or be contained on/in
the substrate on/in which the plant growth takes place.
Alternatively, they may also not be present.

In the context of the present text, the monomers of the
additives mentioned above, in particular of the mentioned
(bio-)polymers, are also considered to be additives to be
used according to the invention.

The skilled person is aware that the application quantity
and mode of action of the additive(s) depends strongly on
its/their own properties or on the properties of the other
components of the mixture to be used according to the

S

a

8

w

8

40

2
s

B

12

invention or on the properties of the substrate and will
accordingly select suitable combinations and application
quantities of the additive(s).

Preferred is also a use as described above, wherein the
plant or weed is selected from the group consisting of
dicotyls of the genera: Abutilon, Aegopodium, Aethusa,
Amaranthus, Ambrosia, Anachusa, Anagallis, Anoda, Anthe-
mis, Aphanes, Arabidopsis, Atriplex, Barbarea, Bellis,
Bidens, Bunias, Capsella, Carduus, Cassia, Centaurea,
Chenopodium, Chrysanthemum, Cirsium, Conium, Conyza,
Consolida, Convolvulus, Datura, Descurainia, Desmodium,
Emex, Equisetum, Erigeron, Erodium, Erysimum, Euphor-
bia, Fumaria, Galeopsis, Galinsoga, Galium, Geranium,
Heracleum, Hibiscus, Ipomoea, Kochia, Lamium, Lapsana,
Lathyrus, Lepidium, Lithoserpermum, Linaria, Lindernia,
Lycopsis, Malva, Matricaria, Mentha, Mercurialis, Mul-
lugo, Myosotis, Papaver, Pharbitis, Plantago, Polygonum,
Portulaca, Ranunculus, Raphanus, Rorippa, Rotala, Rumex,
Salsola, Senecio, Sesbania, Sida, Sinapis, Sisymbrium, Sola-
num, Sonchus, Sphenoclea, Stachys, Stellaria, Taraxacum,
Thlaspi, Trifolium, Tussaligo, Urtica, Veronica, Viola, Xan-
thium; dicotyls of the genera: Arachis, Beta, Brassica,
Cucumis, Cucurbita, Helianthus, Daucus, Glycine, Gossy-
pium, Ipomoea, Lactuca, Linum, Lycopersicon, Nicotiana,
Phaseolus, Pisum, Solanum, Vicia; monocotyls of the gen-
era: Aegilops, Agropyron, Agrostis, Alopecurus, Apera,
Avena, Brachiaria, Bromus, Cenchrus, Commelina, Cyn-
odon, Cyperus, Dactyloctenium, Digitaria, Echinochloa,
Eleocharis, Eleusine, Eragrostis, Eriochloa, Festuca, Fim-
bristylis, Heteranthera, Imperata, Ischaemum, Juncus, Lep-
tochloa, Lolium, Monochoria, Panicum, Paspalum,
Phalaris, Phleum, Poa, Rottboellia, Sagittaria, Scirpus,
Setaria, Sorghum; and monocotyls of the genera: Allium,
Ananas, Asparagus, Avena, Hordeum, Oryza, Panicum, Sac-
charum, Secale, Sorghum, Triticale, Triticum, Zea; mosses
of the lineages liverworts (Marchantiosida), hornworts (An-
thocerotopsida), mosses (Bryopsida);

preferably wherein the growth of at least two, three, four,
five, six, seven, eight, nine, ten, more than ten or all of these
plants is prevented or reduced.

According to a preferred embodiment of the use accord-
ing to the invention, the, one, several or all of the plants are
one or more liverwort(s) selected from the group consisting
of the genera: Acolea, Acrobolbus, Acrochila, Acromas-

5 tigum, Acroscyphella, Acroscyphus, Acrostolia, Adelocolia,

Aitchisoniella, Alicularia, Ansonia, Allisoniella, Alobiella,
Alobiellopsis, Amazoopsis, Amphicephalozia, Amphilophoc-
olea, Andrewsianthus, Aneura, Anomacaulis, Anomoclada,
Anomylia, Anthelia, Anthelis, Aphanolejeunea, Aplozia,
Apomarsupella, Apometzgeria, Apotreubia, Arachniopsis,
Arctoscyphus, Amelia, Ascidiota, Asterella, Athalamia, Aus-
trofossombronia, Austrolembidium, Austrolophozia, Aus-
trometzgeria, Austroscyphus, Balantiopsis, Bazzania, Bla-
sia, Blepharidophyllum, Blepharostoma, Brevianthus,
Calycularia, Calypogeia, Calyptrocolea, Campanocolea,
Castanoclobos, Cavicularia, Cephalojonesia, Cephalolo-
bus, Cephalomitrion, Cephalozia, Cephaloziella, Cepha-
loziopsis, Ceratolejeunea, Cesius, Chaetophyllopsis, Chias-
tocaulon, Chiloscyphus, _ Chloranthelia, _ Chonecolea,
Cladomastigum, Cladopodiella, Clandarium, Clasmato-
colea, Cololejeunea, Colura, Conocephalum, Conoscyphus,
Corsinia, Cronisia, Crossogyna, Cryptochila, Ctyptocolea,
Cryptocoleopsis, Cryptomitrium, Cryptostipula, Cryptothal-
lus, Cuspidatula, Cyanolophocolea, Cyathodium, Cylindro-
colea, Delavayella, Dendrobazzania, Dendromastigophora,
Denotarisia, Dichiton, Dinckleria, Diplocolea, Diplophyl-
lum, Douinia, Drepanolejeunea, Drucella, Dumortiera,

Page 16

US 11,512,021 B2

13

Dumortieropsis, Enigmella, Eocalypogeia, Eoisotachis,
Eopleurozia, Eotrichocolea, Eremonotus, Eucalyx, Evansia,
Evansianthus, Exormotheca, Fossombronia, Frullania, Fus-
cocephaloziopsis, Gackstroemia, Geocalyx, Geothallus,
Gerhildiella, Goebeliella, Goebelobryum, Gongylanthus,
Gottschea, Gottschelia, Greeneothallus, Grollea, Gymnan-
the, Gymnocoleopsis, Gymnomitrion, Gymnoscyphus,
Gyrothvra, Haesselia, Haplomitrium, Harpalejeunea, Har-
panthus, Hattoria, Hattorianthus, Hattoriella, Hepatostolo-
nophora, Herbertus, Herpetium, Herpocladium, Herzogian-
thus, Herzogobrvum, Heterogemma, — Heteroscyphus,
Horikawaella, Hyalolepidozia, Hygrobiellalwatsukia, Hyg-
rolembidium, Hygrophila, Hymenophyton, Hypoisotachis,
Isolembidium, Isotachis, Jamesoniella, Jensenia, Jubula,
Jubulopsis, Jungermannia, Jungermannites, Krunodiplo-
phyllum, Kurzia, Kymatocalyx, Lamellocolea, Leiocolea,
Leiomitra, Leiomylia, Leioscyphus, Lejeunea, Lembidium,
Lepidogyna, Lepidolaena, Lepidozia, Leptolejeunea, Lepto-
phyllopsis, Leptoscyphopsis, Leptoscyphus, Lethocolea,
Liochlaena, Lobatiriccardia, Lophocolea, Lophonardia,
Lophozia, Lophoziopsis, Lunularia, Macrodiplophyllum,
Maculia, Makinoa, Mania, Marchantia, Marchesinia, Mar-
supella, Marsupidium, Massula, Massularia, Mastigob-
ryum, Mastigopelma, Mastigophora, Mastigopsis, Mesopty-
chia,  Metacalypogeia,  Metahygrobiella,  Metzgeria,
Metzgeriopsis, Micrisophylla, Microlejeunea, Microlepido-
zia, Micropterygium, Mizutania, Mnioloma, Moerckia,
Monocarpus, Monoclea, Monodactylopsis, Monosolenium,
Mytilopsis, Nanomarsupella, Nardia, Neesioscyphus, Neog-
rollea, Neohodgsonia, Neotrichocolea, Noteroclada, Notho-
gymnomitrion, Nothostrepta, Notoscyphus,  Noweffia,
Obtusifolium, Odontolejeunea, Odontoschisma, Oleolopho-
zia, Oxymitra, Pachyglossa, Pachyschistochila, Pallavi-
cinia, Paracromastigum, Paraschistochila, Patarola, Ped-
inophyllopsis, — Pedinophyllum, — Peffia, _ Peltolepsis,
Perdusenia, Perssoniella, Petalophyllum, Phycolepidozia,
Phyllothaffia, Physiotium, Physotheca, Pisanoa, Plagio-
chasma, Plagiochila, Plagiochilidium, Plagiochilion, Platy-
caulis, Plectocolea, Pleuranthe, Pleuroclada, Pleurocladop-
sis, Pleurocladula, Pleurozia, Podanthe, Podomitrium,
Porella, Prasanthus, Preissia, Prionolobus, Protolophozia,
Protomarsupella, Protosyzgiella, Protosyzygiella, Pseudo-
cephalozia, — Pseudocephaloziella, _ Pseudolophocolea,
Pseudolophozia, — Pseudomarsupidium, — Pseudoneura,
Pseudotritomaria, Psiloclada,  Pteropsiella, Ptilidium,
Radula, Reboulia, Rhizocaulia, Rhodoplagiochila, Ricca-
rdia, Riccia, Ricciella, Ricciocarpos, Riella, Roivainenia,
Ruizanthus, Rutinerella, Saccobasis, Saccogyna, Sandeo-
thallus, Sarcocyphos, Sarcomitrium, Sauteria, Scapania,

Scaphophyllum, Schiffneria, Schisma, Schistochila, Schis- 5

tochilaster, Schistochilopsis, Schofieldia, Sendtnera, Sep-
peltia, Sewardiella, Simodon, Solenostoma, Southbya, Spha-
erocarpos,  Sphagnoecetis,  Sprucella, _ Steereella,
Steereocolea, Stenorrhipis, Stephandium, Stephaniella,
Stephanieffidium, Stephensoniella, Symphvogyna, Symphy-
ogynopsis, Symphyomitra, Svnhymenium, Syzygiella, Tae-
niolejeunea, Targionia, Tegulifolium, Telaranea, Thallocar-
pus, Treubia, Triandrophyllum, Trichocolea,
Trichocoleopsis, Trichostylium, Trichotemnoma, Trilopho-
zia, Tritomaria, Tylimanthus, Vanaea, Vandiemenia, Ver-
doornia, Vetaforma, Wettsteinia, Wiesnerella, Xenochila,
Xenothallus, Zoopsidella, Zoopsis.

According to another preferred embodiment of the use
according to the invention, the, one, several or all of the
plants are one or more moss(es) selected from the group
consisting of the genera: Abietinella, Acanthocladiella,
Acanthocladium, Acanthodium, Acanthorrhynchium, Acau-

S

a

w
8

w

40

4

B

14

lon, Acaulonopsis, Achrophyllum, Acidodontium, Acrocla-
dium, Acroporium, Acroschisma, Actinodontium, Actinothu-
idium, Adelothecium,  Aequatoriella, _ Aerobryidium,
Aerobrvopsis, Aerobryum, Aerolindigia, Algaria, Aligrim-
mia, Alleniella, Allioniellopsis, Aloina, Aloinella, Alophosia,
Alsia, Amblyodon, Amblyodum, Amblystegiella, Amblyste-
gium, Amblytropis, Ambuchanania, Amphidium, Ampho-
ridium, Amphoritheca, Anacalypta, Anacamptodon, Ana-
colia, Ancistrodes, Andoa, Andreaea, Andreaeobryum,
Anictangium, Anisothecium, Anodon, Anodontium, Anoect-
angium, Anomobryum, Anomodon, Antitrichia, Aongstro-
emia, Aongstroemiopsis, Apalodium, Aphanorrhegma, Api-
ocarpa, Aplodon, Apterygium, Aptychella, Aptychopsis,
Aptychus, Arbuscula, Arbusculohypopterygium, Archep-
hemeropsis, Archidium, Arctoa, Argyrobryum, Arthrocor-
mus, Aschisma, Aschistodon, Asteriscium, Astomiopsis,
Astomum, Astrodontium, Astrophyllum, Atractylocarpus,
Atrichopsis, Atrichum, Aulacomitrium, Aulacomnium, Aula-
copilum, Austinella, Austrohondaella, Austrophilibertiella,
Baldwiniella, Barbella, Barbellopsis, Barbula, Bartramia,
Bartramiopsis, Beeveria, Bellibarbula, Benitotania, Bestia,
Bissetia, Blindia, Boulaya, Brachelyma, Brachydontium,
Brachymenium, Brachymitrion, Brachyodus,
Brachysteleum, — Brachytheciastrum, —_ Brachytheciella,
Brachythecium, Brachytrichum, Braithwaitea, Braunfelsia,
Braunia, Breidleria, Breutelia, Brothera, Brotherella, Broth-
erobryvum, Bruchia, Bothnia, Brymela, Bryoandersonia,
Brvobeckettia,  Bryobrittonia,  Bryobrothera, — Boto-
ceuthospora, Bryochenea, Brvocrumia, Bryodixonia, Brvo-
dusenia, Botoerythrophyllum, Botohaplocladium, Bryohum-
bertia,  Bryomaltaea, — Bryomanginia, — Botomnium,
Bryonoguchia, Bryonorrisia, Bryophixia, Bryosedgwickia,
Botostreimannia, Bryotestua, Brvum, Buckiella, Buck-
landiella, Burnettia, Buxbaumia, Callialaria, Cafficladium,
Callicosta, Callicostella, Cafficostellopsis, Caffiergidium,
Calliergon, Calohypnum, Calvmperastrum, Calymperes,
Calymperidium, Calymperopsis, Calyptopogon, Calyptoth-
ecium, Calyptrochaeta, Camptochaete, Camptodontium,
Camptothecium, Campyliadelphus, Campylidium, Campy-
lium, Campylodontium, Campylophyllum, Campylopodiella,
Campylopodium, Campylopus, Campylostetium, Canalohy-
popterygium, Cardotia, Cardotiella, Caribaeohypnum, Cat-
agoniopsis, Catagonium, Catharinea, — Catharinella,
Catharomnion, Catoscopium, Cecalyphum, Ceratodon,
Ceuthospora, Ceuthotheca, Chaetomitrella, Chaetomitriop-
sis, Chaetomitrium, Chaetophora, Chamaebryum, Cham-
berlainia, Chameleion, Cheilothela, Chenia, Chileobryon,
Chionoloma, Chionostomum, Chorisodontium, Chryso-hyp-
num, Chrysoblastella, Chrysocladium, Chrvsohypnum, Cin-
clidium, — Circulifolium, — Cirriphyllum, — Cladastomum,
Cladomnion, Cladophascum, Cladopodanthus, Cladopo-
danthus, Claopodium, Clasmatodon, Clastobryella, Clasto-
bryophilum, Clastobryopsis, Clastobryum, Clavitheca,
Cleistocarpidium, Cleistostoma, Climacium, Cnestrum,
Codonoblepharon, Codonoblepharum, Codriophorus, Coe-
lidium, Coleochaetium, Colobodontium, Conardia, Conomi-
trium, Conostomum, Coscinodon, Coscinodontella, Coste-
sia, Craspedophyllum,  Cratoneurella, _ Cratoneuron,
Cratoneuropsis, Crosbya, Crossidium, Crossomitrium, Cru-
mia, Crumuscus, Cryhphaea, Cryphaeadelphus, Cryptocar-
pon, Cryptodicranum, Cryptogonium, Ctyptoleptodon,
Cryptopapillaria, Cryptopodia, Cryptopodium, Cryptoth-
eca, Ctenidiadelphus, Ctenidium, Ctenium, Cupressina,
Curvicladium, Curviramea, Cyathophorella, Cyathopho-
rum, Cyclodictyon, Cygniella, Cylicocarpus, Cynodon, Cyn-
odontiella, Cynodontium, Cynontodium, Cyrto-hypnum,
Cyrtomnium, Cyrtopodendron, Daltonia, Dasymitrium,

Page 17

US 11,512,021 B2

15

Dawsonia, Dendro-hypnum, Dendroalsia, Dendrocyatho-
phorum, Dendrohypoptervgium, Dendroligotrichum, Der-
matodon, Desmatodon, Desmotheca, Dialytrichia, Diapha-
nophyllum, Dichelodontium, Dichelyma, Dichodontium,
Dictadiella, Dicnemoloma,  Dicranella, — Dicranodon,
Dicranodontium, Dicranoloma, Dicranoweisia, Dicranum,
Didymodon, Dimerodontium, Dimorphocladon, Diobelon,
Diobelonella, Diphascum, Diphyscium, Diplocomium,
Diploneuron, Diplostichum, Discelium, Discophyllum, Dis-
sodon, Distichia, Distichium, Distichophyffidium, Disticho-
phyllum, Ditrichopsis, Ditrichum, Dixonia, Dolichomitra,
Dolichomitriopsis, Dolotortula, Donnellia, Donrichardsia,
Dorcadion, Dozya, Drepanium, Drepano-hypnum, Dre-
panocladus, Drepanophyllaria, Drepanophyllum, Drum-
mondia, Dryptodon, Dusenia, Duthiella, Eccremidium,
Echinodiopsis, Echinodium, Echinophyllum, Ectropoth-
eciella, Ectropotheciopsis, Ectropothecium,  Eleutera,
Elharveva, Elmeriobryum, Elodium, Encalypta, Endo-
trichella, Endotrichellopsis, Endotrichum, Entodon, Entost-
hodon, Entosthymenium, Eobruchia, Eohypopterygiopsis,
Eoleucodon, Eosphagnum, Ephemerella, Ephemeridium,
Ephemeropsis, Ephemerum, Epipterygium, Eremodon, Eri-
odon, Eriopus, Erpodium, Erythrobarbula, Erythrodontium,
Erythrophyllastrum, Erythrophyllopsis, Erythrophyllum,
Esenbeckia, Eucamptodontopsis, Eucatagonium, Eucla-
dium, Euephemerum, Eumyurium, Euptychium, Eurhynchia-
delphus, Eurhynchiastrum, Eurhynchiella, Eurhynchium,
Eurohypnum, Eustichia, Euzygodon, Exodictvon, Exostra-
tum, Exsertotheca, Fabroleskea, Fabronialschyrodon, Fab-
ronidium, Fallaciella, Fauriella, Felipponea, Fiedleria,
Fifealsotheciadelphus, Fissidens, Flabeffidium, Fleischero-
bryum, Floribundaria, Florschuetziella, Flowersia, Fon-
tinalis, Foreauella, Forsstroemia, Frahmiella, Funaria,
Funariella, Gammiella, Ganguleea, Garckea, Garovaglia,
Gasterogrimmia, Geheebia, Gemmabryum, Georgia, Ger-
trudia, Gertrudiella, Gigaspermum, Giraldiella, Globulina,
Globulinella, Glossadelphus, Glyphomitrium, Glyphomi-
trium, Glyphothecium, Glyptothecium, Gollania, Gongro-
nia, Goniobryum, Goniomitrium, Gradsteinia, Grimmia,
Groutiella, Guembelia, Guerramontesia, Gymnostomiella,
Gymnostomum, Gyroweisia, Habrodon, Habrodonlshiba-
ealwatsukiella, Hageniella, Hamatocaulis, Hampeella,
Hampeohypnum, Handeliobryum, Haplocladium, Hap-
lodon, Haplodontium, Haplohymenium, Haptymenium, Har-
pidium, Harpophyllum, Harrisonia, Harveya, Hebantial-
tatiella,  Hedenaesia,  Hedenasiastrum, — Hedwigia,
Hedwigidium, Helicoblepharum, — Helicodontiadelphus,
Helicodontium, Heliconema, Helicophyllum, Helodium,
Hemiragis, Henicodium, Hennediella, Herpetineuron, Her-

zogiella, Heterocladium, Heterodon, Heterophyfium, Hil- 5

debrandtiella, Hilpertia, Himantocladium, Holoblepharum,
Holodontium, Holomitriopsis, Holomitrium, Homalia,
Homaliadelphus, Homaliodendron, Homaliopsis,
Homalotheciella, Homalothecium, Homomaffium, Hon-
daella, Hookeria, Hookeriopsis, Horikawaea, Horridohyp-
num, Husnotiella, Hyalophyllum, Hydrocryphaealsodrepa-
nium, Hydrogonium, Hydropogon, — Hydropogonella,
Hygroamblystegium, — Hygrodicranum, — Hygrohypnella,
Hygrohypnum, Hylocomiadelphus, Hylocomiastrum, Hylo-
comiopsis, Hylocomium, Hymenodon, Hymenodontopsis,
Hymenoloma, Hymenostomum, Hymenostyliella, Hymenos-
tylium, — Hyocomium, — Hyophila, —_ Hyophiladelphus,
Hyophilopsis, Hypnella, Hypnites, Hypnobartlettia, Hypno-
dendron, Hypnum, Hypodontium, Hypopterygium, Imbri-
bryum, Indopottia, Indothuidium, Indusiella, Inouethuidium,
Isopterygiopsis, Isopterygium, Isotheciopsis, Isothecium,
Jaegerina, Jaegerinopsis, Jaffueliobryum, Juratzkaeella,

S

a

w
8

w

35

40

4

B

16
Kiaeria, Kindbergia, Kingiobryum, _ Kleioweisiopsis,
Koponenia, Kurohimehypnum, Lamprophyllum, Leersia,
Leiodontium, Leiomela, Leiomitrium, Leiotheca, Lembo-
phyllum, Lepidopilidium, Lepidopilum, Leptangium, Lepto-
barbula, Leptobryum, Leptocladiella, Leptocladium, Lepto-
dictyum, Leptodontiella, Leptodontiopsis, Leptodontium,
Leptohymenium, Leptophascum, — Leptopterigynandrum,
Leptostomopsis, Leptostomum, Leptotheca, Leptotrichella,
Leptotrichum, Lepyrodon, Lepyrodontopsis, Leratia, Ler-
atiella, Lescuraea, Leskea, Leskeadelphus, Leskeella,
Leskeodon, Leskeodontopsis, Lesquereuxia, Leucobryum,
Leucodon, Leucodontella, Leucolepis, Leucoloma, Leuco-
mium, Leucoperichaetium, Leucophanella, Leucophanes,
Levierella, Limbella, Limnobium, Limprichtia, Lindbergia,
Lindigia, Loeskeobryum, Loeskypnum, Loiseaubryum,
Looseria, Lophiodon, Lopidium, Lorentzia, Lorentziella,
Loxotis, Ludorugbya, Luisierella, Lyeffia, Macgregorella,
Macouniella, Macrocoma, Macrodictyum, Macrohymenium,
Macromitrium, Macrosporiella, Macrothamniella, Mac-
rothamnium, Mamillariella, Mandoniella, Maschalanthus,
Maschalocarpus, Mastopoma, Materia, Meesia, Meioth-
eciella, Meiotheciopsis, Meiothecium, Meiotrichum, Merc-
eva, Merceyopsis, Mesochaete, Mesonodon, Mesotus, Meta-
distichophyllum, Metaneckera, Meteoridium, Meteoriella,
Meteoriopsis, Meteorium, Metzlerella, Metzleria, Micral-
sopsis, Microbryum, Microcampylopus, Microcrossidium,
Microctenidium, Microdus, Microeurhynchium, Micromi-
trium, Micropoma, Microthamnium, — Microtheciella,
Microthuidium, Miehea, Mielichhoferia, Mildea, Mildeella,
Mironia, Mitrobryum, Mittenia, Mittenothamnium, Mitthy-
ridium, Miyabea, Mniadelphus, Mniobryum, Mniodendron,
Mniomalia, Mnium, Moenkemevera, Molendoa, Moffia,
Morinia, Moseniella, Muelleriella, Muellerobryum, Musco-
florschuetzia, Muscoherzogia, Myrinia, Myurella, Myuriop-
sis, Myurium, Myuroclada, Nanobryum, Nanomitriopsis,
Nanomitrium, Neckera, Neckeradelphus, Neckerites, Neck-
eropsis, Nematocladia, Neobarbella, Neocardotia, Neodi-
cladiella, Neodolichomitra, Neohyophila, Neolescuraea,
Neolindbergia, Neomacounia, Neomeesia, Neonoguchia,
Neophoenix, Neorutenbergia, Neosharpiella, Niphotrichum,
Nobregaea, Nogopterium, Noguchiodendron, Notoligotri-
chum, Ochiobryum, Ochrobryum, Ochyraea, Octodiceras,
Oedicladium, Oedipodiella, Oedipodium, Okamuraea, Oli-
gotrichum, Oncophorus, Oreas, Oreoweisia, Orontobryum,
Orthoamblystegium, Orthodicranum, Orthodon, Orthodon-
tium, Orthodontopsis, Orthogrimmia, — Orthomitrium,
Orthonnion, Orthomniopsis, Orthopus, Orthopyxis, Orthor-
rhynchidium, Orthorrhynchium, Orthostichella,
Orthostichidium, Orthostichopsis, Orthotheciella, Orthoth-
ecium, Orthothecium, Orthothuidium, Orthotrichum, Oster-
waldiella,  Oticodium, | Oxyrrhynchium, — Oxystegus,
Pachyneuropsis,  Pachyneurum, — Palaeocampylopus,
Palamocladium, Palisadula, Paludella, — Patustriella,
Panckowia, Pancovia, Papillaria, Papillidiopsis, Paraleu-
cobryum, Paramyurium, Pararhacocarpus, Parisia, Pele-
kium, Pendulothecium, Pentastichella, Penzigiella, Perom-
nion, Pharomitrium, Phasconica, Phascopsis, Phascum,
Phfiibertiella, Philonotis, Philophyllum, Photinophyllum,
Phyllodon, Phyllodrepanium, Phyllogonium, Physcomi-
trella, Physcomitrium, Physedium, Picobryum, Pictus,
Piloecium, Pilopogon,  Pilopogonella, _ Piloseriopus,
Pilotrichella, Pilotrichidium, Pilotrichum, Pinnatella,
Pirea, Pireella, Plagiobryoides, Plagiobryum, Plagiom-
nium, Plagiopus, Plagioracelopus, Plagiothecium, Plasteur-
hynchium, Platydictya, Platygyriella, Platygyrium, Platy-
hypnidium, — Platyhypnum,  Platyloma, _ Platylomella,
Platyneuron, Plaubelia, Pleuriditrichum, Pleuridium, Pleu-

Page 18

US 11,512,021 B2

17

rochaete, Pleurophascum, Pleuropus, Pleurorthotrichum,
Pleuroweisia, Pleurozium, Pleurozygodon, Pocsiella, Pod-
peraea, Poecilophyllum, Pogonatum, Pohlia, Pola,
Polymerodon, Polvpodiopsis, Polytrichadelphus, Polytri-
chastrum, Polytrichites, Polytrichum, Porothamnium, Poro-
trichella, Porotrichodendron, Porotrichopsis, Porotrichum,
Potamium, Pottia, Pottiopsis, Poweffia, Poweffiopsis, Prin-
gleella, Prionidium, Prionodon, Pseudatrichum,
Pseudephemerum, Pseudisothecium, Pseudoamblystegium,
Pseudobarbella, Pseudobraunia, Pseudobryum, Pseudo-
caffiergon, Pseudocampylium, Pseudochorisodontium,
Pseudocrossidium, Pseudodimerodontium, — Pseudodis-
tichium, Pseudoditrichum, Pseudohygrohypnum,
Pseudohyophila, Pseudohypnella, Pseudoleskea,
Pseudoleskeella, Pseudoleskeopsis, Pseudopiloecium, Pseu-
dopilotrichum, Pseudopleuropus, Pseudopohlia, Pseu-
dopterobryum, Pseudoracelopus, Pseudorhynchostegiella,
Pseudoscleropodium, —Pseudosymblepharis, —Pseudotim-
miella, Pseudotrismegistia, Psilopilum, Pterigynandrum,
Pterobryella, Pterobryidium, Pterobryon, Pterobryopsis,
Pterogoniadelphus, Pterogonidium, Pterogoniella, Pterogo-
nium, Pterygoneurum, Pterygophyllum, Ptilium, Pty-
chodium, Ptychomitriopsis, Ptvchomitrium, Ptychomniella,
Ptychomnion, Ptychostomum, Puiggaria, Puiggariella,
Puiggariopsis, Pulchrinodus, Pungentella, Pursellia, Pylai-
sia, Pylaisiadelpha, Pylaisiella, Pylaisiobryum, Pyra-
midula, Pyramitrium, Pyromitrium, Pyrrhobryum, Quaes-
ticula,  Racelopodopsis,  Racelopus, — Racomitrium,
Racopilum, Radulina, Raineria, Rauia, Rauiella, Regm-
atodon, Reimersia, Remyella, Renauldia, Rhabdodontium,
Rhabdoweisia, Rhacocarpus, Rhacopilopsis, Rhamphidium,
Rhaphidorrhynchium, Rhaphidostegium, Rhaphidostichum,
Rhexophyllum, Rhizofabronia, Rhizogonium, Rhizohypnum,
Rhizomnium, Rhizopelma, Rhodobrvum, Rhyncho-hypnum,
Rhynchostegiella, Rhynchostegiopsis, _Rhynchostegium,
Rhystophyllum, Rhytidiadelphus, Rhytidiastrum, Rhytidiop-
sis, Rhytidium, Richardsiopsis, Rigodiadelphus, Roeffia,
Rosulabrvum, Rottleria, Rutenbergia, Saelania, Sagenotor-
tula, Sainthelenia, Saitoa, Saitobryum, Saitoella, Sanionia,
Saproma, Sarconeurum, Sarmentypnum, Sasaokaea, Sau-
loma, Scabridens, Schimperella, Schimperobryum, Schis-
tidium, Schistomitrium, Schistophyllum, Schistostega, Schi-
zomitrium, Schizymenium, Schliephackea, Schlotheimia,
Schraderobryum, Schwetschkea, Schwetschkeopsis, Sciado-
cladus, Sciaromiella, Sciaromiopsis, Sciaromium, Sciuro-
hypnum, Sclerodontium, Sclerohypnum, Scleropodiopsis,
Scleropodium, Scopelophila, Scorpidiun, Scorpiurium,
Scouleria, Scytalina, Sebillea, Schnemobryum, Sekra, Seli-
geria, Sematophyffites, Sematophyllum, Semibarbula, Ser-

poleskea, Serpotortella, Sharpiella, Shevockia, Sigmatella,

Simophyllum, Simplicidens, Sinocalliergon, Sinskea, Skito-
phyllum, Skottsbergia, Solmsia, Solmsiella, Sorapilla, Spha-
erangium, Sphaerocephalus, Sphaerothecium, Sphagnum,
Spiridentopsis, Spirula, Splachnum, Sporledera, Spruceella,
Squamidium, Stableria, Steerecleus, Steereobrvon, Stego-
nia, Stellariomnium, Stenocarpidiopsis, Stenodesmus,
Stenodictyon, Stenotheciopsis, Stenothecium, Steppomitra,
Stereodon, Stereodontopsis, Stereohypnum, Steyermarkiella,
Stokesiella, Stonea, Stoneobryum, Straminergon, Stramin-
ergon, Streblopilum, Streblotrichum, Streimannia, Stre-
phedium, Streptocalypta, Streptocolea, Streptopogon, Strep-
totrichum, Stroemia, Strombulidens, Struckia, Struckia,
Stylocomium, Swartzia, Symblepharis, Symphyodon, Sym-
physodon, Symphysodontella, Syntrichia, Syrrhopodon, Sys-
tegium, Taiwanobryum, Takakia, Tamariscella, Taxicaulis,
Taxiphyllum, Taxithelium, Tayloria, Teichodontium, Teniolo-
phora, Teretidens, Terrestria, Tetracoscinodon, Tetraphi-

a

w
8

8

40

4

2
s

B

18

dopsis, Tetraphis, Tetraplodon, Tetrapterum, Tetrastichium,
Tetrodontium, Thamniella, Thamniopsis, Thamnium, Tham-
nobryum, Thamnomalia, Thelia, Thiemea, Thuidiopsis, Thu-
idium, Thyridium, Thysanomitrion, Timmia, Timmiella,
Timokoponenia, Toloxis, Tomentypnum, Tortella, Tortula,
Touwia, Touwiodendron, Trachybryum, Trachycarpidium,
Trachycladiella, Trachycystis, Trachyloma, Trachymitrium,
Trachyodontium, Trachyphyllum, Trachythecium, Tra-
chyxiphium, Trematodum, Trichodon, Trichodontium, Trich-
olepis, Trichosteleum, Trichostomopsis, Trichostomum, Tri-
dontium, Trigonodictyon, Tripterocladium, Triquetrella,
Trismegistia, Tristichium, Tuerckheimia, Uleastrum, Uleo-
brvum, Ulota, Unclejackia, Valdonia, Venturiella, Verruci-
dens, Vesicularia, Vesiculariopsis, Vetiplanaxis, Viridivellus,
Vittia, Voitia, Vrolijkheidia, Warburgiella, Wardia, Wamstor-
fia, Webera, Weisiodon, Weisiopsis, Weissia, Weissiodicra-
num, Werneriobryum, Weymouthia, Wijkia, Wildia, Wiffia,

Wilsoniella, Yunnanobryon, Zelometeorium, Zygodon,
Zygotrichia.
According to another preferred embodiment of the use

according to the invention, the, one, several or all of the
plants are one or more hornwort(s) selected from the group
consisting of the genera: Anthoceros, Dendroceros, Folio-
ceros, Hattorioceros, Leiosporoceros, Megaceros, Meso-

ceros, Nothoceros, Notothylas, Paraphymatoceros, Phae-
oceros, Phaeomegaceros, Phymatoceros,
Sphaerosporoceros.

A preferred embodiment relates to a use as described
herein, where the biocementation reaction is not an exother-
mic reaction. In the context of this text, an exothermic
reaction is a reaction in which energy in the form of heat is
released into the environment at constant pressure, prefer-
ably a reaction in which, at constant pressure, the tempera-
ture of the precursors, intermediates and/or products during
the biocementation reaction increases by more than 5° C.,
more preferably by more than 10, 20, 30, 40, 50, 60, 70, 80,
90 or 100° C. (relative to the initial temperature before the
start of the biocementation reaction).

Another aspect of the present invention relates to a
method for preventing or reducing plant growth, preferably
weed growth, on/in a substrate consisting of or comprising
the following steps:

(a) Identifying a substrate to be treated on/in which plant
growth, preferably weed growth, is to be prevented or
reduced,

(b) providing a mixture (as defined above),

(c) applying and/or introducing the mixture provided in step
(b) ontofinto the substrate to be treated in an amount
sufficient to enable biocementation, and

(d) forming a biocement (as defined above) layer so that
plant growth or weed growth on/in the substrate is pre-
vented or reduced.

According to a preferred embodiment of the method
according to the invention, (only) an application of the
mixture provided in step (b) onto/into the substrate to be
treated takes place in step (c). According to another pre-
ferred embodiment of the method according to the inven-
tion, an application and subsequent introduction, for
example by intermixing, of the mixture provided in step (b)
onto/into the substrate to be treated takes place in step (c).

According to another preferred embodiment of the
method according to the invention, (only) an introduction of
the mixture provided in step (b) onto/into the substrate to be
treated takes place in step (c).

According to another preferred embodiment of the
method according to the invention, the substrate or parts
thereof identified in step (a) is removed from the original

Page 19

US 11,512,021 B2

19

location, mixed with the mixture provided in step (b) in an
amount suflicient to enable biocementation (for example in
a mixinger), the mixture obtained is retuned to the original
location of the substrate (or alternatively moved to another
location where a biocement layer is to be formed), followed
by step (d) as described herein. In such a preferred embodi-
ment, step (c) of the method as described herein is omitted.

Depending on the form (solid or powdery or liquid or
gel-like or paste-like) of the mixture provided in step (b) of
the method according to the invention (cf. the explanations
above for this purpose), the application and/or introduction
in step (c) can take place in different ways. Powdery
mixtures can, for example, be scattered onto the substrate to
be treated and/or incorporated into the substrate. Liquid
mixtures, for example, are poured or sprayed onto the
substrate to be treated and are optionally subsequently
incorporated into the substrate. Advantageously, a single
application and/or introduction of the mixture provided in
step (b) onto/into the substrate to be treated is usually

sufficient to form a biocement layer as defined in step (d) of 2

the method according to the invention. Preferably, a single
application of the mixture provided in step (b) onto/into the
substrate to be treated is sufficient to form a biocement layer
as defined in step (d) of the method according to the
invention.

The skilled person is thereby aware that biocementation
(as defined herein) is particularly efficient in the method
according to the invention at a certain application volume or
acertain concentration of the mixture from step (b) (see also
the preferred cell numbers of the organism or the organisms
in the mixture to be used according to the invention as
defined above). According to our own investigations, the
application volume of the mixture to be used according to
the invention (as defined above) is preferably at least 0.1
\/m?, more preferably at least 0.5 /m?, more preferably at
least 1.0 /m?, more preferably at least 2.0 1/m°, at least 3.0
I/m?, at least 4.0 /m? or at least 5.0 /m?, and/or preferably
at most 20.0 I/m?, more preferably at most 10.0 /m?.

For an effective biocementation process in step (d) of the
method according to the invention, it is advantageous if the
system of mixture to be used according to the invention and
substrate (as defined herein) has a water content of more
than 10 wt. % based on the total weight of said system. If the
mixture to be used according to the invention is used in
powdery form (as defined above) in step (b) of the method
according to the invention and if the substrate in step (a) or
(c) of the method according to the invention is also essen-
tially free from water, so that a water content of said system
of 10 wt. % or less results based on the total weight of the

system, it is advantageous if the method according to the 5

invention comprises a further step in which sufficient water
or aqueous solution is added to the mixture from step (b) of
the method before or after application or introduction onto/
into the substrate to be treated, so that a water content of said
system of more than 10 wt. % based on the total weight of
said system results. Alternatively or simultaneously, a cor-
responding amount of water or aqueous solution may be
added to the substrate to be treated before or after applica-
tion or introduction of the mixture provided in step (b) of the
method according to the invention.

Furthermore, if the method according to the invention is
used outdoors, it is advantageous not to carry out the method
in case of heavy rain or wind, for example. Heavy rain or
wind may potentially lead to a loss or significant dilution of
the mixture to be used according to the invention already
before the formation of the biocement layer (step (d)), which
could prevent the formation of the biocement layer and/or

S

a

w

40

4

6

s

6

20

negatively affect its strength and/or thickness. After the
application or introduction of the mixture provided in step
(b) of the method according to the invention onto/into the
substrate to be treated, i.e. in step (d) of the method
according to the invention, the formation of the biocement
layer takes place preferably over an incubation period of at
least 6 hours, preferably of at least 24 hours, more preferably
of at least 48 hours, in which preferably no amount of rain
or wind or artificial irrigation occurs, which leads to a
significant loss of mixture to be used according to the
invention. The required incubation period for the formation
of the biocement layer in step (d) of the method according,
to the invention depends on various environmental param-
eters, such as room or outside temperature and humidity, and
on the application volume of the mixture used. If during said
incubation period of at least 6 hours, preferably of at least 24
hours, more preferably of at least 48 hours, rain or wind
should cause a significant loss of mixture to be used accord-
ing to the invention, it is advantageous to repeat steps (b) to
(d) of the method according to the invention as often as
necessary, preferably once, twice, three times or more, until
a sufficient thickness and strength of the biocement layer for
preventing or reducing plant growth, preferably weed
growth, on/in the substrate is achieved. In addition, or
alternatively, it may be advantageous to repeat steps (b) to
(d) of the method according to the invention, preferably
once, twice, three times or more, if the thickness and/or
strength of the biocement layer formed on/in the substrate
decreases over time due to weathering and/or natural deg-
radation and is thereby no longer sufficient to prevent or
reduce plant growth, preferably weed growth, on/in the
substrate.

The thickness of the biocement layer can be determined
by manual measurement after mechanical breakage of the
layer using a caliper gauge. Alternatively, different (non-
destructive) measuring methods from construction, agricul-
ture, geology or other fields of application can be used (e.g.
hand-held device MIT-SCAN-T2) depending on the thick-
ness of the solidification. The layer thickness of the bioce-
ment layer comprises the area of the substrate that is
solidified by the addition of the mixture.

The strength of the biocement layer corresponds to the
breaking force (in Newton (N)) that must be applied to break
the biocement layer. The breaking of the biocementation
layer is the point at which (plastic) deformation of the layer
does not occur any longer under the application of force, but
the breakthrough of the (biocementation) layer occurs. One
recognizes the breaking by a decrease of the measured force.
The breaking force (maximum value of the force measure-
ment) can be determined using the following method: The
method is based on the standardized test method for strength
determination in cement DIN EN 196-1:2005-05. According,
to the manufacturer, the breaking force is measured using a
digital (breaking) force instrument. A test piece is pressed
into the specimen (until breakage) with the aid of a crank test
stand and the applied force is continuously measured. The
average breaking force is calculated from several measure-
ments (>3). The average breaking force is preferably
between 0.5 and 1000 N, further preferred between 3 and
300 N.

A method as described herein is also preferred, wherein
the biocement layer formed (in step (d) of the method
according to the invention) has a (water) coefficient of
permeability of greater than 10° to 10° m/s, preferably
greater than 10- to 107? m/s, further preferably greater than
10-* to 107° m/s.

Page 20

US 11,512,021 B2

21

Optionally, after step (d) of the method according to the
invention, a further step (e) may take place which comprises
or consists of controlling whether plant growth, preferably
weed growth, has been prevented or reduced. Said control
may be carried out, for example, by determining the cover-
age rate of the plant or weed growth by manual visual
assessment as described in the following examples. Step (e)
of the method according to the invention may be repeated at
regular intervals, if needed, e.g. every 24 or 48 hours.

A method as described above is preferred, wherein the
substrate is selected from the group consisting of sand, soil,
preferably land soil and plant soil, humus, crushed stone,
gravel, clay, silt, sawdust, paper, cardboard, chipboard,
softwood, limestone, coal and mixtures thereof.

Further preferably the substrate used in the method
according to the invention is selected from the group con-
sisting of organic and inorganic material and mixtures
thereof in which plant growth is possible, preferably cable
sand, fine sand, natural sand, quartz sand, crystal quartz
sand, bird sand, gravel sand, joint sand, crushed sand, quartz,
flour, mineral mixture (stone, chippings, gravel), triple hell,
savonniere stone flour, plaster, loess, topsoil, limestone
crushed sand, limestone flour, calcium carbonate (incl. poly-
morphs, derivatives and mixtures, as well as naturally based
(GCC ground calcium carbonate) as well as synthetic PCC
(precipitated calcium carbonate)), talc, dolomite, white lime
(hydrate), trass, cements and mixtures, microsilicates, chalk
(mixture), marble, pearlite, overburden, heap material,
hematite, red chalk, magnesite, iron ore, steatite, soapstone,
kaolin, marl, alumina, attapulgite, clay minerals, bentonite,
zeolite, (calco)stucco, gravel, glass powder, aluminium
oxide, aluminium hydroxide, magnesium oxide, calcium
oxide, calcium hydroxide, magnesite, slate powder, pumice
stone, cristobalite (sand), roman cement, bauxite, pyrites,
sphalerites, silicates, oxides, carbonates, wood (chips),
mulch, alluvial soil, laterite, haematite, ash, (wood ash, fly
ash, bone ash), (pig) farm soils, LUFA standard soils (see
e.g. http:/www.lufa-speyer.de/ or mixtures thereof.

A method as described above is further preferred, wherein
the substrate is a ground area or acreage, preferably in the
open, such as for example a (home) garden area, a joint area
of terraces or entrances and exits, an arable area, an orchard,
a vineyard area, a tree nursery area, a park, a part of a
developed land or urban area, a road, a street, a footpath, a
railway line or an industrially used area.

Depending on the properties of the substrate to be treated,
it may be advantageous to add one or several of the above
additives to the substrate (or component (i), (ii) and/or (iii)
of the mixture provided in step (b)), for example to improve

the reactivity of the substrate with the biocement formed 5

during the method according to the invention. This advan-
tageously leads to a particularly hard or stable biocement
layer, which suppresses weed growth particularly effec-
tively.

The method according to the invention makes it possible,
for example, to close and/or harden joint surfaces of ter-
races, entrances and exits, driveways, roads or footpaths or
open areas with the aid of the biocementation, thus effec-
tively suppressing the growth of plants, preferably weeds,
in/on these substrates. It is also possible to apply the method
according to the invention to weed suppression in agricul-
ture, for example on farmland used for grain or fruit farming.

A preferred embodiment therefore relates to a method
according to the invention as described herein, wherein the
biocement layer formed in step (d) allows the (further)
growth of cultivated plants, but prevents or reduces the
growth of new weeds.

S

a

w
8

w

8

40

2
s

B

22

A method as described above is preferred, wherein the
plant or weed is selected from the group consisting of
dicotyls of the genera: Abutilon, Aegopodium, Aethusa,
Amaranthus, Ambrosia, Anachusa, Anagallis, Anoda, Anthe-
mis, Aphanes, Arabidopsis, Atriplex, Barbarea, Bellis,
Bidens, Bunias, Capsella, Carduus, Cassia, Centaurea,
Chenopodium, Chrysanthemum, Cirsium, Conium, Conyza,
Consolida, Convolvulus, Datura, Descurainia, Desmodium,
Emex, Equisetum, Erigeron, Erodium, Erysimum, Euphor-
bia, Fumaria, Galeopsis, Galinsoga, Galium, Geranium,
Heracleum, Hibiscus, Ipomoea, Kochia, Lamium, Lapsana,
Lathyrus, Lepidium, Lithoserpermum, Linaria, Lindernia,
Lycopsis, Malva, Matricaria, Mentha, Mercurialis, Mul-
lugo, Myosotis, Papaver, Pharbitis, Plantago, Polygonum,
Portulaca, Ranunculus, Raphanus, Rorippa, Rotala, Rumex,
Salsola, Senecio, Sesbania, Sida, Sinapis, Sisymbrium, Sola-
num, Sonchus, Sphenoclea, Stachys, Stellaria, Taraxacum,
Thlaspi, Trifolium, Tussaligo, Urtica, Veronica, Viola, Xan-
thium;, dicotyls of the genera: Arachis, Beta, Brassica,
Cucumis, Cucurbita, Helianthus, Daucus, Glycine, Gossy-
pium, Ipomoea, Lactuca, Linum, Lycopersicon, Nicotiana,
Phaseolus, Pisum, Solanum, Vicia; monocotyls of the gen-
era: Aegilops, Agropyron, Agrostis, Alopecurus, Apera,
Avena, Brachiaria, Bromus, Cenchrus, Commelina, Cyn-
odon, Cyperus, Dactyloctenium, Digitaria, Echinochloa,
Eleocharis, Eleusine, Eragrostis, Eriochloa, Festuca, Fim-
bristylis, Heteranthera, Imperata, Ischaemum, Juncus, Lep-
tochloa, Lolium, Monochoria, Panicum, Paspalum,
Phalaris, Phleum, Poa, Rottboellia, Sagittaria, Scirpus,
Setaria, Sorghum; and monocotyls of the genera: Allium,
Ananas, Asparagus, Avena, Hordeum, Oryza, Panicum, Sac-
charum, Secale, Sorghum, Triticale, Triticum, Zea, mosses
of the lineages liverworts (Marchentiosida), hornworts (An-
thocerotopsida), mosses (bryopsida).

According to a preferred embodiment of the method
according to the invention, the, one, several or all of the
plants are one or more liverwort(s) selected from the group
consisting of the genera: Acolea, Acrobolbus, Acrochila,
Acromastigum, Acroscyphella, Acroscyphus, Acrostolia,
Adelocolia, Aitchisoniella, Alicularia, Ansonia, Allisoniella,
Alobiella, Alobiellopsis, Amazoopsis, Amphicephalozia,
Amphilophocolea, Andrewsianthus, Aneura, Anomacaulis,
Anomoclada, Anomylia, Anthelia, Anthelis, Aphanolejeu-
nea, Aplozia, Apomarsupella, Apometzgeria, Apotreubia,

5 Arachniopsis, Arctoscyphus, Amelia, Ascidiota, Asterella,

Athalamia, Austrofossombronia, Austrolembidium, Aus-
trolophozia, Austrometzgeria, Austroscyphus, Balantiopsis,
Bazzania, Blasia, Blepharidophyllum, Blepharostoma, Bre-
vianthus, Calycularia, Calypogeia, Calyptrocolea, Cam-
panocolea, Castanoclobos, Cavicularia, Cephalojonesia,
Cephalolobus, Cephalomitrion, Cephalozia, Cephaloziella,
Cephaloziopsis, Ceratolejeunea, Cesius, Chaetophyllopsis,
Chiastocaulon, Chiloseyphus, Chloranthelia, Chonecolea,
Cladomastigum, Cladopodiella, Clandarium, Clasmato-
colea, Cololejeunea, Colura, Conocephalum, Conoscyphus,
Corsinia, Cronisia, Crossogyna, Cryptochila, Ctyptocolea,
Cryptocoleopsis, Cryptomitrium, Cryptostipula, Cryptothal-
lus, Cuspidatula, Cyanolophocolea, Cyathodium, Cylindro-
colea, Delavayella, Dendrobazzania, Dendromastigophora,
Denotarisia, Dichiton, Dinckleria, Diplocolea, Diplophyl-
lum, Douinia, Drepanolejeunea, Drucella, Dumortiera,
Dumortieropsis, Enigmella, Eocalypogeia, Eoisotachis,
Eopleurozia, Eotrichocolea, Eremonotus, Eucalyx, Evansia,
Evansianthus, Exormotheca, Fossombronia, Frullania, Fus-
cocephaloziopsis, Gackstroemia, Geocalyx, Geothallus,
Gerhildiella, Goebeliella, Goebelobryum, Gongylanthus,
Gottschea, Gottschelia, Greeneothallus, Grollea, Gymnan-

Page 21

US 11,512,021 B2

23

the, Gymnocoleopsis, Gymnomitrion, Gymnoscyphus,
Gvrothyra, Haesselia, Haplomitrium, Harpalejeunea, Har-
panthus, Hattoria, Hattorianthus, Hattoriella, Hepatostolo-
nophora, Herbertus, Herpetium, Herpocladium, Herzogian-
thus, Herzogobrvum, Heterogemma, — Heteroscyphus,
Horikawaella, Hyalolepidozia, Hygrobiellalwatsukia, Hyg-
rolembidium, Hygrophila, Hymenophyton, Hypoisotachis,
Isolembidium, Isotachis, Jamesoniella, Jensenia, Jubula,
Jubulopsis, Jungermannia, Jungermannites, Krunodiplo-
phyllum, Kurzia, Kymatocalyx, Lamellocolea, Leiocolea,
Leiomitra, Leiomylia, Leioscyphus, Lejeunea, Lembidium,
Lepidogyna, Lepidolaena, Lepidozia, Leptolejeunea, Lepto-
phyllopsis, Leptoscyphopsis, Leptoscyphus, Lethocolea,
Liochlaena, Lobatiriccardia, Lophocolea, Lophonardia,
Lophozia, Lophoziopsis, Lunularia, Macrodiplophyllum,
Maculia, Makinoa, Mannia, Marchantia, Marchesinia, Mar-
supella, Marsupidium, Massula, Massularia, Mastigob-
ryum, Mastigopelma, Mastigophora, Mastigopsis, Mesopty-
chia,  Metacalypogeia,  Metahygrobiella, — Metzgeria,
Metzgeriopsis, Micrisophylla, Microlejeunea, Microlepido-
zia, Micropterygium, Mizutania, Mnioloma, Moerckia,
Monocarpus, Monoclea, Monodactylopsis, Monosolenium,
Mytilopsis, Nanomarsupella, Nardia, Neesioscyphus, Neog-
rollea, Neohodgsonia, Neotrichocolea, Noteroclada, Notho-
gymnomitrion, Nothostrepta, Notoscyphus,  Noweffia,
Obtusifolium, Odontolejeunea, Odontoschisma, Oleolopho-
zia, Oxymitra, Pachyglossa, Pachyschistochila, Pallavi-
cinia, Paracromastigum, Paraschistochila, Patarola, Ped-
inophyllopsis, — Pedinophyllum,  Peffia, _ Peltolepsis,
Perdusenia, Perssoniella, Petalophyllum, Phycolepidozia,
Phyllothaffia, Physiotium, Physotheca, Pisanoa, Plagio-
chasma, Plagiochila, Plagiochilidium, Plagiochilion, Platy-
caulis, Plectocolea, Pleuranthe, Pleuroclada, Pleurocladop-
sis, Pleurocladula, Pleurozia, Podanthe, Podomitrium,
Porella, Prasanthus, Preissia, Prionolobus, Protolophozia,
Protomarsupella, Protosyzgiella, Protosyzygiella, Pseudo-
cephalozia, — Pseudocephaloziella, _ Pseudolophocolea,
Pseudolophozia, — Pseudomarsupidium, — Pseudoneura,
Pseudotritomaria, Psiloclada, Pteropsiella, Ptilidium,
Radula, Reboulia, Rhizocaulia, Rhodoplagiochila, Ricca-
rdia, Riccia, Ricciella, Ricciocarpos, Riella, Roivainenia,
Ruizanthus, Ruttnerella, Saccobasis, Saccogyna, Sandeo-
thallus, Sarcocyphos, Sarcomitrium, Sauteria, Scapania,
Scaphophyllum, Schiffneria, Schisma, Schistochila, Schis-
tochilaster, Schistochilopsis, Schofieldia, Sendtnera, Sep-
peltia, Sewardiella, Simodon, Solenostoma, Southbya, Spha-
erocarpos,  Sphagnoecetis,  Sprucella, _Steereella,
Steereocolea, Stenorrhipis, Stephandium, Stephaniella,
Stephaniellidium, Stephensoniella, Symphyogyna, Svmphy-

ogynopsis, Symphyomitra, Svnhymenium, Syzygiella, Tae- 5

niolejeunea, Targionia, Tegulifolium, Telaranea, Thallocar-
pus, Treubia, Triandrophyllum, Trichocolea,
Trichocoleopsis, Trichostylium, Trichotemnoma, Trilopho-
zia, Tritomaria, Tylimanthus, Vanaea, Vandiemenia, Ver-
doornia, Vetaforma, Wettsteinia, Wiesnerella, Xenochila,
Xenothallus, Zoopsidella, Zoopsis.

According to a further preferred embodiment of the
method according to the invention, the, one, several or all of
the plants are one or more moss(es) selected from the group
consisting of the genera: Abietinella, Acanthocladiella,
Acanthocladium, Acanthodium, Acanthorrhynchium, Acau-
lon, Acaulonopsis, Achrophyllum, Acidodontium, Acrocla-
dium, Acroporium, Acroschisma, Actinodontium, Actinothu-
idium, Adelothecium,  Aequatoriella, _ Aerobryidium,
Aerobryopsis, Aerobryum, Aerolindigia, Algaria, Aligrim-
mia, Alleniella, Allioniellopsis, Aloina, Aloinella, Alophosia,
Alsia, Amblyodon, Amblyodum, Amblystegiella, Amblyste-

S

a

w
8

8

40

4

2
s

B

24

gium, Amblytropis, Ambuchanania, Amphidium, Ampho-
ridium, Amphoritheca, Anacalypta, Anacamptodon, Ana-
colia, Ancistrodes, Andoa, Andreaea, Andreaeobryum,
Anictangium, Anisothecium, Anodon, Anodontium, Anoect-
angium, Anomobryum, Anomodon, Antitrichia, Aongstro-
emia, Aongstroemiopsis, Apalodium, Aphanorrhegma, Api-
ocarpa, Aplodon, Apterygium, Aptychella, Aptychopsis,
Aptychus, Arbuscula, Arbusculohypopterygium, Archep-
hemeropsis, Archidium, Arctoa, Argyrobryum, Arthrocor-
mus, Aschisma, Aschistodon, Asteriscium, Astomiopsis,
Astomum, Astrodontium, Astrophyllum, Atractylocarpus,
Atrichopsis, Atrichum, Aulacomitrium, Aulacomnium, Aula-
copilum, Austinella, Austrohondaella, Austrophilibertiella,
Baldwiniella, Barbella, Barbellopsis, Barbula, Bartramia,
Bartramiopsis, Beeveria, Bellibarbula, Benitotania, Bestia,
Bissetia, Blindia, Boulaya, Brachelyma, Brachydontium,
Brachymenium, Brachymitrion, Brachyodus,
Brachysteleum, — Brachytheciastrum, —_ Brachytheciella,
Brachythecium, Brachytrichum, Braithwaitea, Braunfelsia,
Braunia, Breidleria, Breutelia, Brothera, Brotherella, Broth-
erobrvum, Bruchia, Bothnia, Brymela, Bryoandersonia,
Brvobeckettia,  Bryobrittonia,  Bryobrothera, _ Boto-
ceuthospora, Bryochenea, Bryocrumia, Bryodixonia, Bryo-
dusenia, Botoerythrophyllum, Botohaplocladium, Bryohum-
bertia,  Bryomaltaea, — Bryomanginia, — Botomnium,
Bryonoguchia, Bryonorrisia, Bryophixia, Bryosedgwickia,
Botostreimannia, Bryotestua, Brvum, Buckiella, Buck-
landiella, Burnettia, Buxbaumia, Callialaria, Callicladium,
Callicosta, Callicostella, Cafficostellopsis, Caffiergidium,
Calliergon, Calohypnum, Calymperastrum, Calymperes,
Calymperidium, Calymperopsis, Calyptopogon, Calyptoth-
ecium, Calyptrochaeta, Camptochaete, Camptodontium,
Camptothecium, Campyliadelphus, Campylidium, Campy-
lium, Campylodontium, Campylophyllum, Campylopodiella,
Campylopodium, Campylopus, Campylostelium, Canalohy-
popterygium, Cardotia, Cardotiella, Caribaeohypnum, Cat-
agoniopsis, Catagonium, Catharinea, — Catharinella,
Catharomnion, Catoscopium, Cecalyphum, Ceratodon,
Ceuthospora, Ceuthotheca, Chaetomitrella, Chaetomitriop-
sis, Chaetomitrium, Chaetophora, Chamaebryum, Cham-
berlainia, Chameleion, Cheilothela, Chenia, Chileobryon,
Chionoloma, Chionostomum, Chorisodontium, Chryso-hyp-
num, Chrysoblastella, Chrysocladium, Chrvsohypnum, Cin-
clidium, — Circulifolium, — Cirriphyllum,  Cladastomum,
Cladomnion, Cladophascum, Cladopodanthus, Cladopo-
danthus, Claopodium, Clasmatodon, Clastobryella, Clasto-
bryophilum, Clastebryopsis, Clastobryum, Clavitheca,
Cleistocarpidium, Cleistostoma, Climacium, Cnestrum,
Codonoblepharon, Codonoblepharum, Codriophorus, Coe-
lidium, Coleochaetium, Colobodontium, Conardia, Conomi-
trium, Conostomum, Coscinodon, Coscinodontella, Coste-
sia, Craspedophyllum, Cratoneurella, | Cratoneuron,
Cratoneuropsis, Crosbya, Crossidium, Crossomitrium, Cru-
mia, Crumuscus, Cryhphaea, Cryphaeadelphus, Cryptocar-
pon, Cryptodicranum, Cryptogonium, Ctyptoleptodon,
Cryptopapillaria, Cryptopodia, Cryptopodium, Cryptoth-
eca, Ctenidiadelphus, Ctenidium, Ctenium, Cupressina,
Curvicladium, Curviramea, Cyathophorella, Cyathopho-
rum, Cyclodictyon, Cygniella, Cylicocarpus, Cynodon, Cyn-
odontiella, Cynodontium, Cynontodium, Cyrto-hypnum,
Cyrtomnium, Cyrtopedendron, Daltonia, Dasymitrium,
Dawsonia, Dendro-hypnum, Dendroalsia, Dendrocyatho-
phorum, Dendrohypopterygium, Dendroligotrichum, Der-
matodon, Desmatodon, Desmotheca, Dialytrichia, Diapha-
nophyllum, Dichelodontium, Dichelyma, Dichodontium,
Dicladiella, Dicnemoloma, Dicranella, — Dicranodon,
Dicranodontium, Dicranoloma, Dicranoweisia, Dicranum,

Page 22

US 11,512,021 B2

25
Didymodon, Dimerodontium, Dimorphocladon, Diobelon,
Diobelonella, Diphascum, Diphyscium, Diplocomium,

Diploneuron, Diplostichum, Discelium, Discophyllum, Dis-
sodon, Distichia, Distichium, Distichophyffidium, Disticho-
phyllum, Ditrichopsis, Ditrichum, Dixonia, Dolichomitra,
Dolichomitriopsis, Dolotortula, Donnellia, Donrichardsia,
Dorcadion, Dozya, Drepanium, Drepano-hypnum, Dre-
panocladus, Drepanophyllaria, Drepanophyllum, Drum-
mondia, Dryptodon, Dusenia, Duthiella, Eccremidium,
Echinodiopsis, Echinodium, Echinophyllum, Ectropoth-
eciella, Ectropotheciopsis, Ectropothecium,  Eleutera,
Elharveya, Elmeriobryum, Elodium, Encalypta, Endo-
trichella, Endotrichellopsis, Endotrichum, Entodon, Entost-
hodon, Entosthymenium, Eobruchia, Eohypoptervgiopsis,
Eoleucodon, Eosphagnum, Ephemerella, Ephemeridium,
Ephemeropsis, Ephemerum, Epiptervgium, Eremodon, Eri-
odon, Eriopus, Erpodium, Erythrobarbula, Erythrodontium,
Erythrophyllastrum, Erythrophyllopsis, Erythrophyllum,
Esenbeckia, Eucamptodontopsis, Eucatagonium, Eucla-
dium, Euephemerum, Eumyurium, Euptychium, Eurhynchia-
delphus, Eurhynchiastrum, Eurhynchiella, Eurhynchium,
Eurohypnum, Eustichia, Euzygodon, Exodictvon, Exostra-
tum, Exsertotheca, Fabroleskea, Fabronialschyrodon, Fab-
ronidium, Fallaciella, Fauriella, Felipponea, Fiedleria,
Fifealsotheciadelphus, Fissidens, Flabellidium, Fleischero-
bryum, Floribundaria, Florschuetziella, Flowersia, Fon-
tinalis, Foreauella, Forsstroemia, Frahmiella, Fumaria,
Funariella, Gammiella, Ganguleea, Garckea, Garovaglia,
Gasterogrimmia, Geheebia, Gemmabryum, Georgia, Ger-
trudia, Gertrudiella, Gigaspermum, Giraldiella, Globulina,
Globulinella, Glossadelphus, Glyphomitrium, Glyphomi-
trium, Glyphothecium, Glyptothecium, Gollania, Gongro-
nia, Goniobryum, Goniomitrium, Gradsteinia, Grimmia,
Groutiella, Guembelia, Guerramontesia, Gymnostomiella,
Gymnostomum, Gyroweisia, Habrodon, Habrodonlshiba-
ealwatsukiella, Hageniella, Hamatocaulis, Hampeella,
Hampeohypnum, Handeliobryum, Haplocladium, Hap-
lodon, Haplodontium, Haplohymenium, Haptvymenium, Har-
pidium, Harpophyllum, Harrisonia, Harveya, Hebantial-
tatiella, | Hedenaesia,  Hedenasiastrum, — Hedwigia,
Hedwigidium, Helicoblepharum, — Helicodontiadelphus,
Helicodontium, Heliconema, Helicophyllum, Helodium,
Hemiragis, Henicodium, Hennediella, Herpetineuron, Her-
zogiella, Heterocladium, Heterodon, Heterophyfium, Hil-
debrandtiella, Hilpertia, Himantocladium, Holoblepharum,
Holodontium, Holomitriopsis, Holomitrium, Homalia,
Homaliadelphus, Homaliodendron, Homatiopsis,
Homalotheciella, Homalothecium, Homomallium, Hon-
daella, Hookeria, Hookeriopsis, Horikawaea, Horridohyp-

num, Husnotiella, Hyalophyllum, Hydrocryphaealsodrepa- 5
nium, Hydrogonium, Hydropogon, — Hydropogonella,
Hygroamblystegium, — Hygrodicranum, — Hygrohypnella,

Hygrohypnum, Hylocomiadelphus, Hylocomiastrum, Hylo-
comiopsis, Hylocomium, Hymenodon, Hymenodonitopsis,
Hymenoloma, Hymenostomum, Hymenostyliella, Hymenos-
tylium, — Hyocomium, — Hyophila, — Hyophiladelphus,
Hyophilopsis, Hypnella, Hypnites, Hypnobartlettia, Hypno-
dendron, Hypnum, Hypodontium, Hypopterygium, Imbri-
bryum, Indopottia, Indothuidium, Indusiella, Inouethuidium,
Isopterygiopsis, Isopterygium, Isotheciopsis, Isothecium,
Jaegerina, Jaegerinopsis, Jaffueliobryum, Juratzkaeella,
Kiaeria, Kindbergia, Kingiobryum, _ Kleioweisiopsis,
Koponenia, Kurohimehypnum, Lamprophyllum, Leersia,
Leiodontium, Leiomela, Leiomitrium, Leiotheca, Lembo-
phyllum, Lepidopilidium, Lepidopilum, Leptangium, Lepto-
barbula, Leptobryum, Leptocladiella, Leptocladium, Lepto-
dictyum, Leptodontiella, Leptodontiopsis, Leptodontium,

S

a

w
8

w

40

4

2
s

26

Leptohymenium, Leptophascum, — Leptopterigynandrum,
Leptostomopsis, Leptostomum, Leptotheca, Leptotrichella,
Leptotrichum, Lepyrodon, Lepyrodontopsis, Leratia, Ler-
atiella, Lescuraea, Leskea, Leskeadelphus, Leskeella,
Leskeodon, Leskeodontopsis, Lesquereuxia, Leucobryum,
Leucodon, Leucodontella, Leucolepis, Leucoloma, Leuco-
mium, Leucoperichaetium, Leucophanella, Leucophanes,
Levierella, Limbella, Limnobium, Limprichtia, Lindbergia,
Lindigia, Loeskeobryum, Loeskypnum, Loiseaubryum,
Looseria, Lophiodon, Lopidium, Lorentzia, Lorentziella,
Loxotis, Ludorugbya, Luisierella, Lyeffia, Macgregorella,
Macouniella, Macrocoma, Macrodictyum, Macrohymenium,
Macromitrium, Macrosporiella, Macrothamniella, Mac-
rothamnium, Mamillariella, Mandoniella, Maschalanthus,
Maschalocarpus, Mastopoma, Matteria, Meesia, Meioth-
eciella, Meiotheciopsis, Meiothecium, Meiotrichum, Merc-
eva, Merceyopsis, Mesochaete, Mesonodon, Mesotus, Meta-
distichophyllum, Metaneckera, Meteoridium, Meteoriella,
Meteoriopsis, Meteorium, Metzlerella, Metzleria, Micral-
sopsis, Microbryum, Microcampylopus, Microcrossidium,
Microctenidium, Microdus, Microeurhynchium, Micromi-
trium, Micropoma, Microthamnium, — Microtheciella,
Microthuidium, Miehea, Mielichhoferia, Mildea, Mildeella,
Mironia, Mitrobryum, Mittenia, Mittenothamnium, Mitthy-
ridium, Miyabea, Mniadelphus, Mniobryum, Mniodendron,
Mniomalia, Mnium, Moenkemeyera, Molendoa, Moffia,
Morinia, Moseniella, Muelleriella, Muellerobryum, Musco-
florschuetzia, Muscoherzogia, Myrinia, Myureila, Myuriop-
sis, Myurium, Myuroclada, Nanobryum, Nanomitriopsis,
Nanomitrium, Neckera, Neckeradelphus, Neckerites, Neck-
eropsis, Nematocladia, Neobarbella, Neocardotia, Neodi-
cladiella, Neodolichomitra, Neohyophila, Neolescuraea,
Neolindbergia, Neomacounia, Neomeesia, Neonoguchia,
Neophoenix, Neorutenbergia, Neosharpiella, Niphotrichum,
Nobregaea, Nogopterium, Noguchiodendron, Notoligotri-
chum, Ochiobryum, Ochrobryum, Ochyraea, Octodiceras,
Oedicladium, Oedipodiella, Oedipodium, Okamuraea, Oli-
gotrichum, Oncophorus, Oreas, Oreoweisia, Orontobryum,
Orthoamblystegium, Orthodicranum, Orthodon, Orthodon-

tium, Orthodontopsis, Orthogrimmia, — Orthomitrium,
Orthonnion, Orthomniopsis, Orthopus, Orthopyxis, Orthor-
rhynchidium, Orthorrhynchium, Orthostichella,

Orthostichidium, Orthostichopsis, Orthotheciella, Orthoth-
ecium, Orthothecium, Orthothuidium, Orthotrichum, Oster-

waldiella,  Oticodium, — Oxyrrhynchium, — Oxystegus,
Pachyneuropsis,  Pachyneurum, — Palaeocampylopus,
Palamocladium, Palisadula, Paludella, _ Palustriella,

Panckowia, Pancovia, Papillaria, Papillidiopsis, Paraleu-
cobryum, Paramyurium, Pararhacocarpus, Parisia, Pele-
kium, Pendulothecium, Pentastichella, Penzigiella, Perom-
nion, Pharomitrium, Phasconica, Phascopsis, Phascum,
Philibertiella, Philonotis, Philophyllum, Photinophyllum,
Phyllodon, Phyllodrepanium, Phyllogonium, Physcomi-
trella, Physcomitrium, Physedium, Picobryum, Pictus,
Piloecium, Pilopogon,  Pilopogonella, _ Piloseriopus,
Pilotrichella, Pilotrichidium, Pilotrichum,  Pinnatella,
Pirea, Pireella, Plagiobryoides, Plagiobryum, Plagiom-
nium, Plagiopus, Plagioracelopus, Plagiothecium, Plasteur-
hynchium, Platydictya, Platygyriella, Platygyrium, Platy-
hypnidium, — Platyhypnum, —Platyloma, _ Platylomella,
Platyneuron, Plaubelia, Pleuriditrichum, Pleuridium, Pleu-
rochaete, Pleurophascum, Pleuropus, Pleurorthotrichum,
Pleuroweisia, Pleurozium, Pleurozygodon, Pocsiella, Pod-
peraea, Poecilophyllum, Pogonatum, Pohlia, Peolla,
Polymerodon, Polypodiopsis, Polytrichadelphus, Polytri-
chastrum, Polytrichites, Polytrichum, Porothamnium, Poro-
trichella, Porotrichodendron, Porotrichopsis, Porotrichum,

Page 23

US 11,512,021 B2

27
Potamium, Pottia, Pottiopsis, Poweffia, Poweffiopsis, Prin-
gleella, — Prionidium, — Prionodon, —_ Pseudatrichum,

Pseudephemerum, Pseudisothecium, Pseudoamblystegium,
Pseudobarbella, Pseudobraunia, Pseudobryum, Pseudo-
caffiergon,  Pseudocampylium, — Pseudochorisodontium,
Pseudocrossidium, Pseudodimerodontium, — Pseudodis-
tichium, Pseudoditrichum, Pseudohygrohypnum,
Pseudohyophila, Pseudohypnella, Pseudoleskea,
Pseudoleskeella, Pseudoleskeopsis, Pseudopiloecium, Pseu-
dopilotrichum, Pseudopleuropus, Pseudopohlia, Pseu-
dopterobryum, Pseudoracelopus, Pseudorhynchostegiella,
Pseudoscleropodium, —Pseudosymblepharis, —Pseudotim-
miella, Pseudotrismegistia, Psilopilum, Pterigynandrum,
Pterobrvella, Pterobryidium, Pterobryon, Pterobrvopsis,
Pterogoniadelphus, Pterogonidium, Pterogoniella, Pterogo-
nium, Pterygoneurum, Pterygophyllum, Ptilium, Pty-
chodium, Ptychomitriopsis, Ptvchomitrium, Ptychomniella,
Ptychomnion, Ptychostomum, Puiggaria, Puiggariella,
Puiggariopsis, Pulchrinodus, Pungentella, Pursellia, Pylai-
sia, Pylaisiadelpha, Pylaisiella, Pylaisiobryum, Pyra-
midula, Pyramitrium, Pyromitrium, Pyrrhobryum, Quaes-
ticula,  Racelopodopsis, — Racelopus, — Racomitrium,
Racopilum, Radulina, Raineria, Rauia, Rauiella, Regm-
atodon, Reimersia, Remyella, Renauldia, Rhabdodontium,
Rhabdoweisia, Rhacocarpus, Rhacopilopsis, Rkamphidium,
Rhaphidorrkynchium, Rhaphidostegium, Rhaphidostichum,
Rhexophyllum, Rhizofabronia, Rhizogonium, Rhizohypnum,
Rhizomnium, Rhizopelma, Rhodebryum, Rhyncho-hypnum,
Rhynchostegiella, Rhynchostegiopsis, Rhynchostegium,
Rhystophyllum, Rhytidiadelphus, Rhytidiastrum, Rhytidiop-
sis, Rhytidium, Richardsiopsis, Rigodiadelphus, Roeffia,
Rosulabrvum, Rottleria, Rutenbergia, Saelania, Sagenotor-
tula, Sainthelenia, Saitoa, Saitobryum, Saitoella, Sanionia,
Saproma, Sarconeurum, Sarmentypnum, Sasaokaea, Sau-
Toma, Scabridens, Schimperella, Schimperobryum, Schis-
tidium, Schistomitrium, Schistophyllum, Schistostega, Schi-
zomitrium, Schizymenium, Schliephackea, Schlotheimia,
Schraderobryum, Schwetschkea, Schwetschkeopsis, Sciado-
cladus, Sciaromiella, Sciaromiopsis, Sciaromium, Sciuro-
hypnum, Sclerodontium, Sclerohypnum, Scleropodiopsis,
Scleropodium, Scopelophila, Scorpidium, Scorpiurium,
Scouleria, Scytalina, Sebillea, Sehnemobryum, Sekra, Seli-
geria, Sematophyffites, Sematophyllum, Semibarbula, Ser-
poleskea, Serpotortella, Sharpiella, Shevockia, Sigmatella,
Simophyllum, Simplicidens, Sinocalliergon, Sinskea, Skito-
phyllum, Skottsbergia, Solmsia, Solmsiella, Sorapilla, Spha-
erangium, Sphaerocephalus, Sphaerothecium, Sphagnum,
Spiridentopsis, Spirula, Splachnum, Sporledera, Spruceella,
Squamidium, Stableria, Steerecleus, Steereobryon, Stego-
nia, Stellariomnium, Stenocarpidiopsis,
Stenodictyon, Stenotheciopsis, Stenothecium, Steppomitra,
Stereodon, Stereodontopsis, Stereohypnum, Steyermarkiella,
Stokesiella, Stonea, Stoneobryum, Straminergon, Stramin-
ergon, Streblopilum, Streblotrichum, Streimannia, Stre-
phedium, Streptocalypta, Streptocolea, Streptopogon, Strep-
totrichum, Stroemia, Strombulidens, Struckia, Struckia,
Stylocomium, Swartzia, Symblepharis, Symphyodon, Sym-
physodon, Symphysodontella, Syntrichia, Syrrhopodon, Sys-
tegium, Taiwanobryum, Takakia, Tamariscella, Taxicaulis,
Taxiphyllum, Taxithelium, Tayloria, Teichodontium, Teniolo-
phora, Teretidens, Terrestria, Tetracoscinodon, Tetraphi-
dopsis, Tetraphis, Tetraplodon, Tetrapterum, Tetrastichium,
Tetrodontium, Thamniella, Thamniopsis, Thamnium, Tham-
nobryum, Thamnomalia, Thelia, Thiemea, Thuidiopsis, Thu-
idium, Thyridium, Thysanomitrion, Timmia, Timmiella,
Timokoponenia, Toloxis, Tomentypnum, Tortella, Tortula,
Touwia, Touwiodendron, Trachybryum, Trachycarpidium,

Stenodesmus, 5

10

a

w

40

4

28
Trachycladiella, Trachycystis, Trachyloma, Trachymitrium,
Trachyodontium, Trachyphyllum, Trachythecium, Tra-

chyxiphium, Trematodum, Trichodon, Trichodontium, Trich-
olepis, Trichosteleum, Trichostomopsis, Trichostomum, Tri-
dontium, Trigonodictyon, Tripterocladium, Triquetrella,
Trismegistia, Tristichium, Tuerckheimia, Uleastrum, Uleo-
bryum, Ulota, Unclejackia, Valdonia, Venturiella, Verruci-
dens, Vesicularia, Vesiculariopsis, Vetiplanaxis, Viridivellus,
Vittia, Voitia, Vrolijkheidia, Warburgiella, Wardia, Wamstor-
fia, Webera, Weisiodon, Weisiopsis, Weissia, Weissiodicra-
num, Werneriobryum, Weymouthia, Wijkia, Wildia, Wiffia,

Wilsoniella, Yunnanobryon, Zelometeorium, Zygodon,
Zygotrichia.
According to another preferred embodiment of the

method according to the invention, the, one, several or all
plants are one or more hornwort(s) selected from the group
consisting of the genera: Anthoceros, Dendroceros, Folio-
ceros, Hattorioceros, Leiosporoceros, Megaceros, Meso-

ceros, Nothoceros, Notothylas, Paraphymatoceros, Phae-
oceros, Phaeomegaceros, Phymatoceros,
Sphaerosporoceros.

Further preferred is a method as described above, wherein
the mixture is present in liquid form, as a gel, paste or
powder (see above).

The mixture provided in step (b) of the method according
to the invention may therefore be in the form of a mixture,
preferably in powder form, or in the form of two, three, four
or more liquid and/or gel-like and/or paste-like and/or
powdery pre-mixtures which are present separately from
each other and which are mixed together before or during the
application or introduction onto/into the substrate to be
treated in step (c).

Advantageously, it is normally sufficient to carry out steps
(b) to (d) of the method according to the invention once to
guarantee satisfactory weed suppression.

However, according to a further embodiment, steps (b) to
(d) or (b) and (c) can be repeated once, twice, three times or
more as required to guarantee a particularly effective bio-
cementation of the substrate to be treated and thus a par-
ticularly effective weed suppression.

Optionally, according to a further embodiment, one or
several further method steps may be carried out prior to the
application or introduction of the mixture provided in step
(b) onto/into the substrate to be treated (as identified in step
(a) of the method according to the invention), such as, for
example, the flaming of plants, preferably weeds, located
on/in the substrate, manual removal (weeding) of plants,
preferably weeds, located on/in the substrate, and/or the
treatment of the plants, preferably weeds, located on/in the
substrate, with chemical weed control agents. These prior
steps can also be repeated once, twice, three times or more,
respectively.

A preferred embodiment relates to a method as described
herein, wherein the formation of a biocement layer in step
(d) of the method does not comprise an exothermic reaction
(as defined herein).

According to a preferred embodiment of the method
according to the invention, a step of removing the substrate
identified in step (a) on/in which plant growth, preferably
weed growth, is to be prevented or reduced, is not necessary
to prevent or reduce plant growth and thus preferably is not
part of a method according to the invention, in particular
since it is precisely a solidification and/or hardening of the
substrate during the formation of the biocement layer in step
(d) of the method that causes the prevention or reduction of
plant growth, preferably of weed growth.

Page 24

US 11,512,021 B2

29

Furthermore, within the framework of the method accord-
ing to the invention as described herein, advantageously no
step of compacting the substrate on/in which the plant
growth is to be reduced or prevented, or of the biocement
layer formed, is necessary to achieve a prevention or reduc-
tion of plant growth, preferably of the growth of weeds, and
thus is preferably not part of a method according to the
invention.

What is stated herein for a use according to the invention
also applies to a method according the invention as
described herein and vice versa. This applies in particular to
(preferred) embodiments of the use according to the inven-
tion which correspond to (preferred) embodiments of the
method according the invention or can be derived from these
and vice versa.

The invention is explained in more detail below using
selected examples. Unless otherwise stated, all data refer to
the weight.

DRAWINGS

FIG. 1: Suppression of weed growth by non-ureolytic
biocementation using the bacterial strain B. pseudofirmus:
Effect against monocotyls (annual meadow grass) and dico-
tyls (ribwort plantain). Average coverage rates of weed
growth in the 42-day documentation period with weekly
control of the control (top) versus the sample treated with
biocementation mixture 1 (centre). Visual representation
(bottom) of weed growth in control application (bottom left)
compared to treatment with biocementation mixture 1 (bot-
tom right) after 42 days of growth.

FIG. 2: Suppression of weed growth by non-ureolytic
biocementation with the bacterial strains 4. crvstallopoietes,
B. cohnii B. halodurans, and B. pseudofirmus: Effect against
monocotyls (annual meadow grass) and dicotyls (ribwort
plantain). Average coverage rates of weed growth over the
42-day documentation period for weekly control measure-
ment versus samples treated with biocementation mixture 1.

FIG. 3: Application of ureolytic biocementation with L.
sphaericus to suppress weed growth in quartz sand: Effect
against monocotyls (annual meadow grass) and dicotyls
(ribwort plantain) weeds. Average coverage rates of weed
growth (top) in the documentation period of 42 days with
weekly assessment of control versus biocementation mix-
ture 2 and biocementation mixture 3. Visual presentation
(centre) of weed growth in control application (centre left)
compared to treatment with biocementation mixture 2 (cen-
tre centre) and biocementation mixture 3 (centre right) after
42 days of growth in the laboratory. Graphical representation

of the solidification of the biocementation layers (bottom) by 5

investigation of the average breaking force of the specimens.

FIG. 4: Application of ureolytic biocementation with L.
sphaericus to suppress weed growth in land soil: Effect
against monocotyls (annual meadow grass) and dicotyls
(ribwort plantain) weeds. Average coverage rates of weed
growth (top) in the documentation period of 42 days with
weekly assessment of control versus biocementation mix-
ture 2 and biocementation mixture 3. Visual presentation
(centre) of weed growth in control application (centre left)
compared to treatment with biocementation mixture 2 (cen-
tre centre) and biocementation mixture 3 (centre right) after
42 days of growth in the laboratory. Graphical representation
of the solidification of the biocementation layers (bottom) by
investigation of the average breaking force of the specimens.

FIG. 5: Application of ureolytic biocementation with Sp.
pasteurii to suppress weed growth in quartz sand: Effect
against monocotyls (annual meadow grass) and dicotyls

S

a

w
8

40

4

2
s

30

(ribwort plantain) weeds. Average coverage rates of weed
growth (top) in the documentation period of 42 days with
weekly assessment of control versus biocementation mix-
ture 4 and biocementation mixture 5. Visual presentation
(centre) of weed growth in control application (centre left)
compared to treatment with biocementation mixture 4 (cen-
tre centre) and biocementation mixture 5 (centre right) after
42 days of growth in the laboratory. Graphical representation
of the solidification of the biocementation layers (bottom) by
investigation of the average breaking force of the specimens.

FIG. 6: Application of ureolytic biocementation with Sp.
pasteurii to suppress weed growth in land soil: Effect against
monocotyls (annual meadow grass) and dicotyls (ribwort
plantain) weeds. Average coverage rates of weed growth
(top) in the documentation period of 42 days with weekly
assessment of control versus biocementation mixture 4 and
biocementation mixture 5. Visual presentation (centre) of
weed growth in control application (centre left) compared to
treatment with biocementation mixture 4 (centre centre) and
biocementation mixture 5 (centre right) after 42 days of
growth in the laboratory. Graphical representation of the
solidification of the biocementation layers (bottom) by
investigation of the average breaking force of the specimens.

FIG. 7: Application of biocementation to suppress weed
growth in open land: Effect against non-sprouted and freshly
sprouted weeds on agricultural land. Average coverage rates
of water control (top) compared to the area treated with
biocementation mixture 6 (centre) in the documentation
period of 42 days with weekly assessment. Visual represen-
tation of weed growth in control application (bottom left)
compared to treatment with biocementation mixture 6 (bot-
tom right) after 42 days of outdoor growth.

FIG. 8: Application of biocementation to suppress weed
growth in open land: Effect against non-sprouted and freshly
sprouted weeds in pavement joints. Average coverage rates
of water control (top) compared to the area treated with
biocementation mixture 6 (centre) in the documentation
period of 42 days with weekly assessment. Visual represen-
tation of weed growth in control application (bottom left)
compared to treatment with biocementation mixture 6 (bot-
tom right) after 42 days of outdoor growth.

EXAMPLES.

Example 1: Non-Ureolytic Biocementation with B.
pseudofirmus—Suppression of Growth of
Monocotyledonous and Dicotyledonous Weeds

Materials and Methods:

The experiment was carried out in the laboratory in plant
pots with a volume of 450 cm*. The application area was
78.5 cm?, respectively. A total of 6 samples were treated.

The soil substrate in the experiment consisted of quartz
sand with a grain size of 0-2 mm. The sand was washed and
dried by the manufacturer and was used directly. 300 g
quartz sand per plant pot were used as soil substrate.

Before treatment, the quartz sand was free of weed growth
and contained only residues of endemic weed seeds or
inflowing seeds. However, these were not sufficient for
efficient weed growth. Weed sowing was carried out with 0.2
g Plantago lanceolate (ribwort plantain) and 0.1 g Poa
annua (annual meadow grass) per vessel, respectively. For
this purpose, the weed seeds were worked into the top soil
layer at a depth of 2-4 mm.

A liquid biocementation mixture 1 was used, which
consisted of the following components in the following
concentrations:

Page 25

US 11,512,021 B2

31
200 gil Yeast extract
0.2 M calcium acetate
0.2 M calcium lactate
60 gil urea
5x 108 cells/ml B. pseudofirmus

The mixture also contains trace elements and traces of
salts and sugars, for example (<1 wt. %). In this medium,
urea served primarily as a source of nitrogen (and not as a
carbonate source).

All components of the present mixture, which is capable
of biocementation, except for the bacteria of strain B.
pseudofirmus, were present in solid form. The bacteria were
present as liquid culture in a culture medium known in state
of the art, as described for example in Jonkers H. M. et al.,
Tailor Made Concrete Structures—Walraven & Stoelhorst
(eds), 2008, Taylor & Francis Group, London, ISBN 978-
0-415-47535-8, section 2.1, using 5 g/L yeast extract in the

context of the present invention. The solid components and 2

the bacteria in liquid culture were mixed directly before use,
dissolving the solid components.

The biocementation mixture 1 and a water control were
applied in three replicas to each of the test plots. The
application quantity per square metre was 5 litres per replica
throughout. A pipette was used for application.

After the application of biocementation mixture 1, incu-
bation for 48 hours without irrigation took place. During this
period, the minimum temperature was 14.2° C. and the
maximum temperature was 25.2° C.

Weed growth was documented over 42 days after appli-
cation. The minimum and maximum temperatures during
this period were 10.7° C. and 34.0° C. The vessels were
watered once to three times a week, depending on require-
ments. The plant pots were exposed to natural lighting with
day and night rhythm.

Weed growth was documented on a weekly basis. Both
the biocementation layer (layer thickness, strength) and the
so-called coverage rate were determined. The weed growth
coverage rates were determined by manual visual assess-
ment of the plant pots at the specified times. The coverage
rate describes in percent the area covered by weeds. From
this in turn the degree of efficiency according to Abbott was
calculated as follows:

Degree of efficiency=(coverage rate
control gay 2, -coverage rate product.ia, .,)/cover
age rate control ay xy

To verify the carbonate formation, 10 ml of the bioce-

mentation mixture 1 were incubated openly in a reaction 5

vessel for 24 h at room temperature. Subsequently, the
precipitated pellet was obtained by centrifugation and dry-
ing. The dried pellet was used for carbonate detection
according to Scheibler.

Results:

Weed growth was almost completely reduced compared
to control (FIG. 1). The average coverage rate after 42 days
was 2% in the treated area (FIG. 1, centre) and 60% in the
control area (FIG. 1, top). A biocementation layer was
formed during treatment with the biocementation mixture 1
specified above. Weed growth occurred mainly in areas
where the biocementation layer was damaged (e.g. in drying
cracks). The courses of time over the 42 days can be taken
from FIG. 1 (top and centre). In the course of time, an effect
of biocementation in weed suppression is visible. FIG. 1
illustrates the direct comparison between a control sample
(bottom left) and an application sample (bottom right) after

a

8

w

30

40

35

32

42 days of growth. The final degree of efficiency of the
biocementation product was 96.7%.

The biocementation mixture is advantageously similarly
effective as many commercially available weed suppressants
(data not shown), whereby various disadvantages of such
weed suppressants can be avoided.

The qualitative analysis of the carbonate formation
according to Scheibler showed a positive reaction for the
biocementation mixture. The control on the other hand did
not show any carbonate formation (data not shown).

Comparable effects on weed growth were also achieved
with slightly modified formulations of the biocementation
mixture 1 containing calcium acetate, calcium lactate and/or
calcium chloride in a concentration of 0.05 to 0.3 M,
respectively, and not exceeding a total calcium concentra-
tion of 0.4 M in the mixture (data not shown). A variation in
the urea concentration (0.0 to 0.2 M) or in the yeast extract
quantity (0.1 to 30 g/l) also yielded good degrees of effi-
ciency. Weed suppression was dependent on the used con-
centrations of the components of the biocementation mix-
ture, respectively (data not shown).

The entire experiment described above was performed
alternatively with weed seeds that had germinated 24 hours
prior to the application of the biocementation mixture. For
this purpose, the biocementation mixture was applied 1 24
hours after the start of germination. The results obtained
were comparable to those described in the present example
and an almost complete reduction in weed growth was
achieved by applying the mixture (data not shown).

Furthermore, in the biocementation mixture 1 described
above, the bacterial strain B. pseudofirmus was replaced by
the same cell number concentration of B. cohnii, B. halo-
durans or A. crystallopoietes, respectively, the experiment
being carried out as described above, respectively. B. cohnii
and B. halodurans were present in the same culture medium
as B. pseudofirmus (see above) and A. crvstallopoietes was
present in a known culture medium such as Hamilton, R. W.
et al., Journal of Bacteriology 1977, 129(2), 874-879 (see
section “Materials and Methods”, p. 874-875). The test
results of weed suppression with these alternative bioce-
mentation mixtures are shown in FIG. 2.

Example 2: Ureolytic Biocementation with L.
sphaericus—Suppression of Growth of
Monocotyledonous and Dicotyledonous Weeds

Materials and Methods:

Tn the present experiment, two biocementation mixtures,
each with the same bacterial strain, were tested on two
different soil substrates.

The experiment was carried out in the laboratory in plant
pots with a volume of 450 cm*. The application area per
vessel was 78.5 cm”, respectively. A total of 9 plant pots per
soil substrate were treated with the two different biocemen-
tation mixtures (see below).

The first soil substrate in the experiment consisted of
quartz sand with a grain size of 0-2 mm. The quartz sand was
washed and dried by the manufacturer and was used directly.
300 g quartz sand per plant pot were used as soil substrate.
Ina further row, sifted land soil was used as the second soil
substrate. Here, 250 g of land soil were used per application
vessel

Both soil substrates were free of weed growth prior to
treatment. However, both soils contained minimal residues
of endemic weed seeds or inflowing seeds. However, these
were not sufficient for eflicient weed growth. Weed sowing
was carried out with 0.2 g Plantago lanceolate (ribwort

Page 26

US 11,512,021 B2

33

plantain) and 0.1 g Poa annua (annual meadow grass) per
vessel, respectively. For this purpose, the weeds were
worked into the top soil layer at a depth of 2-4 mm.

Two different liquid biocementation mixtures were used
in the experiment.

Mixture 2 was composed of the following components in
the following concentrations:

20.0 gl Yeast extract
0.25 M calcium chloride
18.0 gl urea
4x 108 cells/ml L. sphaericus

The mixture also contained trace elements and traces of
salts and sugars, for example (<1%). In this medium, urea
served primarily as a source of carbonate and secondarily as
a source of nitrogen.

Tn mixture 3, 50 ml/I Silicade 8 (silica sol-acrylic disper-
sion) was additionally added as additive. The additive was
used to achieve a longer lasting stability of the biocemen-
tation layer.

The components of the biocementation mixtures 2 and 3
(without bacteria) were present in solid form, respectively.
The bacteria were present as liquid culture in a culture
medium known in state of the art, respectively, as described
for example in in Dick, J. et al., Biodegradation 2006, 17,
357-367 (see section “Materials and Methods”, p. 359). The
solid components and the bacteria in liquid culture were
mixed directly before use, respectively, dissolving the solid
components. Silicade 8 was present in liquid form and was
only added to mixture 3.

The biocementation mixtures 2 and 3 as well as a water
control were applied in three replicas next to each other to
the two test soils. The application quantity per square metre
was 5 litres per replica throughout. A pipette was used for
application.

After the application of the biocementation mixtures,
incubation for 48 hours without irrigation took place. During
this period, the minimum temperature was 12.4° C. and the
maximum temperature was 24.2° C.

Weed growth was documented over 42 days after appli-
cation. The minimum and maximum temperatures during
this period were 9.7° C. and 27.9° C. The vessels were
watered once to three times a week, depending on require-
ments. The plant pots were exposed to natural lighting with
day and night rhythm.

Weed growth was documented on a weekly basis. Both
the biocementation layer (layer thickness, strength) and the
so-called coverage rate were determined. The weed growth

coverage rates were determined by manual visual assess- ~

ment of the plant pots at the specified times. The coverage
rate describes in percent the area covered by weeds. From
this in turn the degree of efficiency according to Abbott was
calculated as follows:

Degree of efficiency=(coverage rate
control gy, .y-Coverage rate product,, cover
age rate control gay xy
To verify the carbonate formation, 10 ml of the bioce-
mentation mixtures 2 and 3, respectively, were incubated
openly in a reaction vessel for 24 h at room temperature.
Subsequently, the precipitated pellet was obtained by
centrifugation and drying, respectively. The dried pellets
were used for carbonate detection according to Scheibler.
Results:
On the quartz sand, weed growth was completely reduced
compared to the control with both biocementation mixtures

S

a

8

8

34

2 and 3 (FIG. 3). The average coverage rate after 42 days
was 0% on the area treated with biocementation mixture 2,
0% on the area treated with biocementation mixture 3 and
31% on the control area. In both treatments (with bioce-
mentation mixture 2 and 3) a biocementation layer was
formed. Weed growth occurred mainly in areas where the
biocementation layer was damaged (e.g. in drying cracks).
The courses of time over the 42 days can be taken from FIG.
3 (top). The effect of biocementation on weed suppression is
illustrated in FIG. 3 (centre) and demonstrates the direct
comparison between a control (centre left), biocementation
mixture 2 (centre centre) and biocementation mixture 3
(centre right). The final degree of efliciency of both bioce-
mentation mixtures was 100%, respectively. Afier 42 days,
the strengths of the biocementation layers were determined
(as described above). The biocementation sample with mix-
ture 2 had a layer with an average breaking force of 4.3 N,
however, it is lower than with mixture 3 with 19.1 N (see
FIG. 3 (below)). By incorporating the Silicade 8 additive in
the biocementation layer (through biocementation mixture
3), an increased resistance to environmental parameters and
thus probably longer effectiveness could be achieved. No
biocement layer was present in the control sample.

On the land soil, weed growth was almost completely
reduced compared to control (FIG. 4). The average coverage
rate after 42 days was 0% on the area treated with bioce-
mentation mixture 2, 2% on the area treated with biocemen-
tation mixture 3 and 50% on the control area. In both
treatments (with biocementation mixture 2 and 3) a bioce-
mentation layer was formed. Weed growth occurred mainly
in areas where the biocementation layer was damaged (e.g.
in drying cracks). The courses of time over the 42 days can
be taken from FIG. 4 (top). The effect of the biocementation
on weed suppression is illustrated in FIG. 4 (centre) and
demonstrates the direct comparison between a control
sample (centre left), biocementation mixture 2 (centre cen-
tre) and biocementation mixture 3 (centre right). The final
degree of efliciency of the two biocementation mixtures 2
and 3 was 100% and 96%, respectively. After 42 days, the
strength of the resulting biocementation layers was deter-
mined (as described above). The biocementation sample
with mixture 2 had a layer with an average breaking force of
20.5 N, however, it is lower than with mixture 3 with 84.3
N. By incorporating the Silicade 8 additive in the bioce-
mentation layer (through biocementation mixture 3), an
increased resistance to environmental parameters and thus
probably longer effectiveness could be achieved. No bioce-
ment layer was present in the control sample.

The qualitative analysis of the carbonate formation
according to Scheibler showed a positive reaction for the
biocementation mixtures 2 and 3. The controls showed no
carbonate formation (data not shown).

Comparable effects on weed growth were also shown in
slightly modified formulations of biocementation mixtures 2
and 3 containing calcium acetate, calcium lactate and/or
calcium chloride in a concentration of 0.05 to 0.3 M,
respectively, and not exceeding a total calcium concentra-
tion of 0.4 M (data not shown). A stronger variation in the
urea concentration (e.g. 0.1 to 1.0 M) or in the yeast extract
quantity (e.g. 0.1 to 30 g/l) also produced good degrees of
efficiency. Weed suppression was dependent on the concen-
trations of the components used in the respective biocemen-
tation mixture, respectively (data not shown).

The entire experiments described above were performed
alternatively with weed seeds that had germinated 24 hours
prior to the application of the respective biocementation
mixture. For this purpose, the respective biocementation

Page 27

US 11,512,021 B2

35

mixture was applied 24 hours after the start of germination.
The results obtained were comparable to those described in
the present example and an almost complete reduction in
weed growth was achieved by applying the respective
mixture (data not shown).

Example 3: Ureolytic Biocementation with Sp.
Pasteurii—Growth Suppression of
Monocotyledonous and Dicotyledonous Weeds

Materials and Methods:

In the present experiment, two biocementation mixtures,
each with the same bacterial strain, were tested on two
different soil substrates.

The experiment was carried out in the laboratory in plant
pots with a volume of 450 cm*. The application area was
78.5 cm’, respectively. A total of 9 plant pots per soil
substrate were treated with the two different biocementation

mixtures (see below). The application area per vessel was 5

78.5 cm?, respectively.

The first soil substrate in the experiment consisted of
quartz sand with a grain size of 0-2 mm. The quartz sand was
washed and dried by the manufacturer and was used directly.
300 g quartz sand per plant pot were used as soil substrate.
Ina further row, sifted land soil was used as the second soil
substrate. Here, 250 g of land soil were used per application
vessel.

Both soil substrates were free of weeds prior to treatment.
Both soils contained minimal residues of endemic weed
seeds or inflowing seeds. However, these were not sufficient
for efficient weed growth. Weed sowing was carried out with
0.2 g Plantago lanceolata (ribwort plantain) and 0.1 g Poa
annua (annual meadow grass) per vessel, respectively. For
this purpose, the weed seeds were worked into the top soil
layer at a depth of 2-4 mm.

Two different liquid biocementation mixtures were used
in the experiment.

Mixture 4 was composed of the following components in
the following concentrations:

20.0 gil Yeast extract
0.25 M calcium chloride
18.0 gil urea
4x 108 cells/ml Sp. pasteurii

The mixture also contained trace elements and traces of
salts and sugars, for example (<1%). In this medium, urea

served primarily as a source of carbonate and secondarily as_ 5

a source of nitrogen.

In mixture 5, 50 ml/ Silicade 8 (silica sol-acrylic disper-
sion) was additionally added as additive. The additive was
used to achieve a longer lasting stability of the biocemen-
tation layer.

The components of the biocementation mixtures 4 and 5
(without bacteria) were present in solid form, respectively.
The bacteria were present as liquid culture in a culture
medium known from the state of the art, respectively, as
described for example in Cuthbert, M. O. et al., Ecological
Engineering 2012, 41, 32-40 (see section 2.2, p. 33). The
solid components and the bacteria in liquid culture were
mixed directly before use, respectively, dissolving the solid
components. Silicade 8 was present in liquid form and was
only added to mixture 5.

The biocementation mixtures 4 and 5 as well as a water
control were applied in three replicas next to each other to

S

a

8

8

s

36

the two test soils. The application quantity per square metre
was 5 litres per replica throughout. A pipette was used for
application.

After the application of the biocementation mixtures,
incubation for 48 hours without irrigation took place. During
this period, the minimum temperature was 12.4° C. and the
maximum temperature was 24.2° C.

Weed growth was documented over 42 days after appli-
cation. The minimum and maximum temperatures during
this period were 9.7° C. and 27.9° C. The vessels were
watered once to three times a week, depending on require-
ments. The plant pots were exposed to natural lighting with
day and night rhythm.

Weed growth was documented on a weekly basis. Both
the biocementation layer (layer thickness, strength) and the
so-called coverage rate were determined. The weed growth
coverage rates were determined by manual visual assess-
ment of the plant pots at the specified times. The coverage
rate describes in percent the area covered by weeds. From
this in turn the degree of efficiency according to Abbott was
calculated as follows:

Degree of efficiency=(coverage rate
control jay xy-COVEragE Tate product.jn,, .,)/COVEI
age rate control aay x

To verify the carbonate formation, 10 ml of the bioce-
mentation mixtures 4 and 5, respectively, were incubated
openly in a reaction vessel for 24 h at room temperature.
Subsequently, the precipitated pellet was obtained by cen-
trifugation and drying, respectively. The dried pellets were
used for carbonate detection according to Scheibler.

Results:

On the quartz sand, weed growth was completely reduced.
compared to the control (FIG. 5). The average coverage rate
after 42 days was 0% on the area treated with biocementa-
tion mixture 4, 0% on the area treated with biocementation
mixture 5 and 40% on the control area. In treatments with
the mixtures a biocementation layer was formed. Weed
growth occurred mainly in areas where the biocementation
layer was damaged (e.g. in drying cracks). The courses of
time over the 42 days can be taken from FIG. 5 (top). The
effect of biocementation on weed suppression is illustrated
in FIG. 5 (centre) and demonstrates the direct comparison
between a control (centre left), biocementation mixture 4
(centre centre) and biocementation mixture 5 (centre right).
The final degree of efficiency of both biocementation mix-
tures was approximately 100%, respectively. After 42 days,
the strengths of the biocementation layers were determined
(as described above). The biocementation sample with mix-
ture 4 had a layer with an average breaking force of 4.1 N,
the sample with mixture 5 had an average breaking force of
19.3 N (see FIG. 5 (below)). By incorporating the Silicade
8 additive in the biocementation layer (through biocemen-
tation mixture 5), an increased resistance to environmental
parameters and thus probably longer effectiveness could be
achieved. No biocement layer was present in the control.

On the land soil, weed growth was almost completely
reduced compared to control (FIG. 6). The average coverage
rate after 42 days was 0% on the area treated with bioce-
mentation mixture 4, 0% on the area treated with biocemen-
tation mixture 5 and 50% on the control area. In treatments
with the mixtures a biocementation layer was formed. Weed
growth occurred mainly in areas where the biocementation
layer was damaged (e.g. in drying cracks). The courses of
time over the 42 days can be taken from FIG. 6 (top). The
effect of the biocementation on weed suppression is illus-
trated in FIG. 6 (centre) and demonstrates the direct com-

Page 28

US 11,512,021 B2

37

parison between a control sample (centre left), mixture 4
(centre centre) and mixture 5 (centre right). The final degree
of efficiency of the two biocementation mixtures was 100%,
respectively. After 42 days, the strength of the resulting
biocementation layers was determined. The biocementation
sample with mixture 4 had a layer with an average breaking
force of 20.8 N, the sample with mixture 5 had an average
breaking force of 66.8 N. By incorporating the Silicade 8
additive in the biocementation layer (through biocementa-
tion mixture 5), an increased resistance to environmental
parameters and thus probably longer effectiveness could be
achieved. No biocement layer was present in the control.

The qualitative analysis of the carbonate formation
according to Scheibler showed a positive reaction for the
biocementation mixtures 4 and 5, respectively. The controls
showed no carbonate formation (data not shown).

Comparable effects on weed growth were also shown in
slightly modified formulations of biocementation mixtures 4
and 5 containing calcium acetate, calcium lactate and/or
calcium chloride in a concentration of 0.05 to 0.3 M,
respectively, and not exceeding a total calcium concentra-
tion of 0.4 M (data not shown). A stronger variation in the
urea concentration (e.g. 0.1 to 1.0 M) also produced good
degrees of efficiency. Weed suppression was dependent on
the concentrations of the components used in the respective
biocementation mixture, respectively (data not shown).

The entire experiments described above were performed
alternatively with weed seeds that had germinated 24 hours
prior to the application of the respective biocementation
mixture. For this purpose, the respective biocementation
mixture was applied 24 hours after the start of germination.
The results obtained were comparable to those described in
the present example and an almost complete reduction in
weed growth was achieved by applying the respective
mixture (data not shown).

Example 4: Open Land—Suppression of Weeds on
Agricultural Land and Pavement Joints

Materials and Methods:

The experiment was carried out on agricultural land and
a grouted driveway. The application area was 6 m?, respec-
tively.

The soil substrate of the agricultural land consisted of
natural land soil. Before the application of the mixture

according to the invention (see below), the agricultural land 5

was cleared of established weeds by chemical treatment with
glyphosate (approx. 6 months before the present experi-
ment). After this pre-treatment, no plant residues were left
on the surface.

The joint material of the driveway consisted mainly of
joint gravel and joint sand. Prior to application, these areas
were mechanically cleared of established weeds by a brush
cutter. After this pre-treatment there were also no plant
residues left on the surface.

Both soils contained the weed seeds, inflow seeds and
possibly fresh seedlings or plant remains found there. No
artificial weed sowing was carried out as there were enough
endemic weeds present at both sites.

For the experiment a liquid biocementation mixture 6 was
used consisting of the following components and concen-
trations:

S

a

w
8

w

40

6

s

18.0 gl Urea
25 gl lignosulfonate
5x 108 cells/ml Sporosarcina pasteurii

The solution also contains trace elements and traces of
salts, sugars and yeast extract, for example (<1%).

The bacteria were present as liquid culture in culture
medium (see description in previous example 3). The urea
and the lignosulfonate were originally present in solid form.
They were dissolved in water directly before use and mixed
with the liquid culture of the bacteria.

The biocementation mixture 6 and a water control were
applied in three replicas to each of the two test areas,
respectively. The application quantity per square metre was
4 litres per replica throughout. A standard watering can (5 1
volume) was used for application.

After the application of the biocementation mixture 6,
incubation was carried out for 48 hours without rain or
artificial irrigation. During this period, the minimum tem-
perature was 5° C. and the maximum temperature was 25°
Cc.

Weed growth was documented over 42 days after appli-
cation. The minimum and maximum temperatures were 5°
C. and 33° C., respectively. The total precipitation during the
documentation period was 91 mm (I/m?). Due to the weather
no additional watering was necessary.

Weed growth was documented on a weekly basis. Both
the biocementation layer (layer thickness, strength) and the
so-called coverage rate were determined. The weed growth
coverage rates were determined by manual visual assess-
ment of the plant pots at the specified times. The coverage
rate describes in percent the area covered by weeds. From
this in turn the degree of efficiency according to Abbott was
calculated as follows:

Degree of efficiency=(coverage rate
control jay coverage rate producta, .»)/cover-
age rate control jay ay

Results:

On the agricultural land, weed growth was significantly
reduced compared to control. The coverage rate after 42
days was 3.3% on the treated areas and 70.0% on the control
area.

A biocementation layer was formed. Weed growth
occurred mainly in areas where the biocementation layer
was damaged (e.g. in drying cracks). The courses of time
over the 42 days can be taken from FIG. 7 (top, water
control) and FIG. 7 (centre, treatment with biocementation
mixture 6). FIG, 7 (bottom) illustrates the direct comparison
between the control and the application (within the marker,
respectively). The final degree of efficiency of the bioce-
mentation mixture 6 was 95.2%,

On the grouted driveway, the weed growth was also
significantly reduced in comparison to the control. The
coverage rate after 42 days was 3.7% on the treated areas
and 40.0% on the control area. Here, too, a biocementation
layer was formed. The courses of time over the 42 days can
be taken from FIG. 8 (top, water control) and FIG. 8 (centre,
treatment with biocementation mixture 6). FIG. 8 (bottom)
illustrates the direct comparison between the control and the
application (within the joints). The final degree of efficiency
of the biocementation product was 90.8%.

The biocementation mixture is advantageously similarly
effective as many commercially available weed suppressants
(data not shown), whereby various disadvantages of such
weed suppressants can be avoided.

Page 29

US 11,512,021 B2

39

Comparable effects on weed growth in open land were
also shown with alternative mixture formulations addition-
ally containing 0.1 M to 0.3 M CaCl, (based on mixture 6)
(data not shown). A stronger variation in urea concentration
(1.0 to 0.15 M) also produced good degrees of efficiency in
weed suppression (data not shown).

The invention claimed is:

1. A method for preventing or reducing plant growth

comprising:

(a) identifying a substrate in need of reduced plant
growth,
wherein the substrate is an area of land selected from a

garden area, a joint area of terraces or entrances and
exits, an arable area, an orchard, a vineyard area, a
tree nursery area, a park, a part of a developed land
or urban area, a road, a street, a footpath, a railway
line, an industrially used area, and agricultural land;
(b) providing a mixture capable of biocementation,
wherein the mixture is free of cement and comprises:
(i) one or more organisms and/or enzymes capable of
forming carbonate and/or of inducing and/or cata-
lyzing carbonate formation;

(ii) one or more substances for the formation of car-
bonate;

(iii) optionally, one or more cation sources; and

(iv) one or more additives selected from (bio-)poly-
mers, monomers of (bio-)polymers, hydrogel form-
ers, cold soluble and/or warm soluble (plant) glues,
polysaccharides and extracellular polymeric sub-
stances, monomers of polysaccharides, protein
sources, nutrients, silicates and derivatives thereof,
water glass-like binders, cement additives, hydro-
phobicizers, emulsifiers, binders, and bacteria
capable of forming polymers; and

(c) applying and/or introducing the mixture onto/into the
substrate in an amount sufficient to enable biocemen-
tation,
wherein the substrate is not removed from the place

where it is identified in (a) prior to applying and/or
introducing the mixture onto/into the substrate; and

(d) forming a biocement layer so that plant growth on/in
the substrate is prevented or reduced.

2. A method for preventing or reducing plant growth

comprising:
(a) identifying a substrate in need of reduced plant
growth, wherein the substrate is selected from sand,
soil, humus, crushed stone, gravel, clay, silt, sawdust,
paper, cardboard, chipboard, softwood, limestone, coal,
and mixtures thereof;
(b) providing a mixture capable of biocementation,
wherein the mixture is free of cement and comprises:
(i) one or more organisms and/or enzymes capable of
forming carbonate and/or of inducing and/or cata-
lyzing carbonate formation;

(ii) one or more substances for the formation of car-
bonate;

(iii) optionally, one or more cation sources; and

(iv) one or more additives selected from (bio-)poly-
mers, monomers of (bio-)polymers, hydrogel form-
ers, cold soluble and/or warm soluble (plant) glues,
polysaccharides and extracellular polymeric sub-
stances, monomers of polysaccharides, protein
sources, nutrients, silicates and derivatives thereof,
water glass-like binders, cement additives, hydro-
phobicizers, emulsifiers, binders, and bacteria
capable of forming polymers; and

5

S

a

2

8

w

8

3

40

5

3:

2
s

40

(c) applying and/or introducing the mixture onto/into the
substrate in an amount suflicient to enable biocemen-
tation,
wherein the substrate is not removed from the place

where it is identified in (a) prior to applying and/or
introducing the mixture onto/into the substrate; and

(d) forming a biocement layer so that plant growth on/in
the substrate is prevented or reduced.

3. The method according to claim 1, wherein the plant is
selected from the group consisting of dicotyls of the genera:
Abutilon, Aegopodium, Aethusa, Amaranthus, Ambrosia,
Anachusa, Anagallis, Anoda, Anthemis, Aphanes, Arabidop-
sis, Atriplex, Barbarea, Bellis, Bidens, Bunias, Capsella,
Carduus, Cassia, Centaurea, Chenopodium, Chrysanthe-
mum, Cirsium, Conium, Conyza, Consolida, Convolvulus,
Datura, Descurainia, Desmodium, Emex, Equisetum,
Erigeron, Erodium, Erysimum, Euphorbia, Fumaria,
Galeopsis, Galinsoga, Galium, Geranium, Heracleum,
Hibiscus, Ipomoea, Kochia, Lamium, Lapsana, Lathyrus,
Lepidium, Lithoserpermum, Linaria, Lindernia, Lycopsis,
Malva, Matricaria, Mentha, Mercurialis, Mullugo, Myoso-
tis, Papaver, Pharbitis, Plantago, Polygonum, Portulaca,
Ranunculus, Raphanus, Rorippa, Rotala, Rumex, Salsola,
Senecio, Sesbania, Sida, Sinapis, Sisymbrium, Solanum,
Sonchus, Sphenoclea, Stachys, Stellaria, Taraxacum,
Thlaspi, Trifolium, Tussaligo, Urtica, Veronica, Viola, Xan-
thium; dicotyls of the genera: Arachis, Beta, Brassica,
Cucumis, Cucurbita, Helianthus, Daucus, Glycine, Gossy-
pium, Ipomoea, Lactuca, Linum, Lycopersicon, Nicotiana,
Phaseolus, Pisum, Solanum, Vicia; monocotyls of the gen-
era: Aegilops, Agropyron, Agrostis, Alopecurus, Apera,
Avena, Brachiaria, Bromus, Cenchrus, Commelina, Cyn-
odon, Cyperus, Dactyloctenium, Digitaria, Echinochloa,
Eleocharis, Eleusine, Eragrostis, Eriochloa, Festuca, Fim-
bristylis, Heteranthera, Imperata, Ischaemum, Juncus, Lep-
tochloa, Lolium, Monochoria, Panicum, Paspalum,
Phalaris, Phleum, Poa, Rottboellia, Sagittaria, Scirpus,
Setaria, Sorghum; and monocotyls of the genera: Allium,
Ananas, Asparagus, Avena, Hordeum, Oryza, Panicum, Sac-
charum, Secale, Sorghum, Triticale, Triticum, Zea; mosses
of the lineages liverworts, hornworts, mosses, and mixtures
thereof.

4. The method according to claim 1, wherein the mixture
is present in liquid form, as a gel, paste or powder.

5. The method according to claim 1, wherein the mixture
comprises one or more enzymes.

6. The method according to claim 1, wherein the mixture
comprises one or more microorganisms.

7. The method according to claim 6, wherein the micro-
organisms are selected from microorganisms of the phylum
of Firmicutes, Proteobacteria, Actinobacteria, Cyanobacte-
ria, and a mixture thereof.

8. The method according to claim 7, wherein the micro-
organisms are selected from the class of Bacilli, Alphapro-
teobacteria, Gammaproteobacteria, Deltaproteobacteria,
Epsilonproteobacteria, Actinobacteria, Cyanobacteria, and a
mixture thereof.

9. The method according to claim 8, wherein the micro-
organisms are selected from the order of Bacillales, Entero-
bacteriales, Actinomycetales, Synechococcales, and a mix-
ture thereof.

10. The method according to claim 9, wherein the micro-
organisms are selected from the families of Planococcaceae,
Bacillaceae, Enterobacteriaceae, Myxococcaceae, Helico-
bacteraceae, Pseudomonadaceae, Caulobacteraceae, Brevi-
bacteriaceae, Micrococcineae, Synechococcaceae, and a
mixture thereof.

Page 30

US 11,512,021 B2

41
11. The method according to claim 10, wherein the
microorganisms are selected from the genera of Sporo-
sarcina, Lysinibacillus, Bacillus, Proteus, Myxococcus,
Helicobacter, Pseudomonas, Brevundimonas, Brevibacte-

rium, Micrococcaceae, Synechococcus, and a mixture 5

thereof.

12. The method according to claim 11, wherein the
microorganisms are selected from the species of Sporo-
sarcina pasteurii, Sporosarcina ureae, Lysinibacillus spha-
ericus, Lysinibacillus fusiformis, Bacillus megaterium,
Lysinibacillus sp., Bacillus pseudofirmus, Bacillus halo-
durans, Bacillus cohnii, Proteus vulgaris, Proteus mirabilis,
Myxococcus xanthus, Helicobacter pylori, Pseudomonas
aeruginosa, Brevundimonas diminuta, Brevibacterium lin-
ens, Arthrobacter crystallopoietes, Synechococcus, and a
mixture thereof.

13. The method according to claim 5, wherein the mixture
comprises one or more enzymes selected from urease,
asparaginase, carbonic anhydrase, metabolic enzymes, and a
mixture thereof.

14. The method according to claim 1, wherein the one or
more substances for the formation of carbonate are selected
from urea and salts thereof, organic acids, peptides, amino
acids, vegetable and animal complex substrates, industrial
waste streams, protein lysates, anaerobic substrates, and a
mixture thereof.

15. The method according to claim 1, wherein the mixture
comprises one or more cation sources selected from calcium
salts, magnesium salts, manganese salts, zinc salts, cobalt
salts, nickel salts, copper salts, lead salts, iron salts, cad-

42

mium salts, polymers, heavy metal cations, light metal
cations, radioactive cations, and mixtures thereof.

16. The method according to claim 1, wherein at least one
of the one or more additives of (iv) is a (bio-)polymer
selected from polyhydroxybutyrate, polylactide, polybuty-
lene succinate, polyacrylic acid, polymethacrylate, poly(2-
hydroxyethylmethacrylate), polyvinyl alcohol, polyvinyl
acetate, polyvinylpyrrolidone, poly(2-ethyl-2-oxazoline),
polystyrene, polyamide, copolymers, polyamino acids, cel-
lulose and derivatives thereof, starch and derivatives thereof,
lignins and derivatives thereof, pectins and derivatives
thereof, natural adhesives, chitin and derivatives thereof,
chitosan and derivatives thereof, cyclodextrins and deriva-
tives thereof, and dextrins and derivatives thereof.

17. The method according to claim 1, wherein at least one
of the one or more additives of (iv) is a hydrogel former
selected from xanthan gum, alginates, and agar agars.

18. The method according to claim 1, wherein at least one
of the one or more additives of (iv) is an extracellular
polymeric substance chosen from microbial exopolysaccha-
rides.

19. The method according to claim 1, wherein at least one
of the one or more additives of (iv) is a polysaccharide or
extracellular polymeric substance comprising one or more of
acetic acid, sucrose, glucose, fructose, and inulin.

20. The method according to claim 1, wherein at least one
of the one or more additives of (iv) is a monomer of
polysaccharides selected from lactose, sucrose, glucose,
fructose, and inulin.
Source notes & attribution
  1. https://rexresearch.com/MicrobeInducedCalcitePptn/US11512021B2.pdf

Dossier visual record.

All 1 figures

Source illustrations for Living mineral systems. Captions identify the document and evidence type.

Keep following.

Thematic connections, not evidence of a shared mechanism