WO2022072922A1 - Atmospheric water harvesting system - Google Patents
Atmospheric water harvesting system Download PDFInfo
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- WO2022072922A1 WO2022072922A1 PCT/US2021/053341 US2021053341W WO2022072922A1 WO 2022072922 A1 WO2022072922 A1 WO 2022072922A1 US 2021053341 W US2021053341 W US 2021053341W WO 2022072922 A1 WO2022072922 A1 WO 2022072922A1
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- C—CHEMISTRY; METALLURGY
- C09—DYES; PAINTS; POLISHES; NATURAL RESINS; ADHESIVES; COMPOSITIONS NOT OTHERWISE PROVIDED FOR; APPLICATIONS OF MATERIALS NOT OTHERWISE PROVIDED FOR
- C09K—MATERIALS FOR MISCELLANEOUS APPLICATIONS, NOT PROVIDED FOR ELSEWHERE
- C09K17/00—Soil-conditioning materials or soil-stabilising materials
- C09K17/14—Soil-conditioning materials or soil-stabilising materials containing organic compounds only
- C09K17/18—Prepolymers; Macromolecular compounds
- C09K17/20—Vinyl polymers
- C09K17/22—Polyacrylates; Polymethacrylates
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- C—CHEMISTRY; METALLURGY
- C09—DYES; PAINTS; POLISHES; NATURAL RESINS; ADHESIVES; COMPOSITIONS NOT OTHERWISE PROVIDED FOR; APPLICATIONS OF MATERIALS NOT OTHERWISE PROVIDED FOR
- C09K—MATERIALS FOR MISCELLANEOUS APPLICATIONS, NOT PROVIDED FOR ELSEWHERE
- C09K17/00—Soil-conditioning materials or soil-stabilising materials
- C09K17/14—Soil-conditioning materials or soil-stabilising materials containing organic compounds only
- C09K17/18—Prepolymers; Macromolecular compounds
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- A—HUMAN NECESSITIES
- A01—AGRICULTURE; FORESTRY; ANIMAL HUSBANDRY; HUNTING; TRAPPING; FISHING
- A01G—HORTICULTURE; CULTIVATION OF VEGETABLES, FLOWERS, RICE, FRUIT, VINES, HOPS OR SEAWEED; FORESTRY; WATERING
- A01G24/00—Growth substrates; Culture media; Apparatus or methods therefor
- A01G24/30—Growth substrates; Culture media; Apparatus or methods therefor based on or containing synthetic organic compounds
- A01G24/35—Growth substrates; Culture media; Apparatus or methods therefor based on or containing synthetic organic compounds containing water-absorbing polymers
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B01—PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
- B01J—CHEMICAL OR PHYSICAL PROCESSES, e.g. CATALYSIS OR COLLOID CHEMISTRY; THEIR RELEVANT APPARATUS
- B01J20/00—Solid sorbent compositions or filter aid compositions; Sorbents for chromatography; Processes for preparing, regenerating or reactivating thereof
- B01J20/22—Solid sorbent compositions or filter aid compositions; Sorbents for chromatography; Processes for preparing, regenerating or reactivating thereof comprising organic material
- B01J20/26—Synthetic macromolecular compounds
- B01J20/264—Synthetic macromolecular compounds derived from different types of monomers, e.g. linear or branched copolymers, block copolymers, graft copolymers
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- B—PERFORMING OPERATIONS; TRANSPORTING
- B01—PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
- B01J—CHEMICAL OR PHYSICAL PROCESSES, e.g. CATALYSIS OR COLLOID CHEMISTRY; THEIR RELEVANT APPARATUS
- B01J20/00—Solid sorbent compositions or filter aid compositions; Sorbents for chromatography; Processes for preparing, regenerating or reactivating thereof
- B01J20/22—Solid sorbent compositions or filter aid compositions; Sorbents for chromatography; Processes for preparing, regenerating or reactivating thereof comprising organic material
- B01J20/26—Synthetic macromolecular compounds
- B01J20/265—Synthetic macromolecular compounds modified or post-treated polymers
- B01J20/267—Cross-linked polymers
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- C—CHEMISTRY; METALLURGY
- C08—ORGANIC MACROMOLECULAR COMPOUNDS; THEIR PREPARATION OR CHEMICAL WORKING-UP; COMPOSITIONS BASED THEREON
- C08F—MACROMOLECULAR COMPOUNDS OBTAINED BY REACTIONS ONLY INVOLVING CARBON-TO-CARBON UNSATURATED BONDS
- C08F220/00—Copolymers of compounds having one or more unsaturated aliphatic radicals, each having only one carbon-to-carbon double bond, and only one being terminated by only one carboxyl radical or a salt, anhydride ester, amide, imide or nitrile thereof
- C08F220/02—Monocarboxylic acids having less than ten carbon atoms; Derivatives thereof
- C08F220/52—Amides or imides
- C08F220/54—Amides, e.g. N,N-dimethylacrylamide or N-isopropylacrylamide
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- C—CHEMISTRY; METALLURGY
- C08—ORGANIC MACROMOLECULAR COMPOUNDS; THEIR PREPARATION OR CHEMICAL WORKING-UP; COMPOSITIONS BASED THEREON
- C08F—MACROMOLECULAR COMPOUNDS OBTAINED BY REACTIONS ONLY INVOLVING CARBON-TO-CARBON UNSATURATED BONDS
- C08F271/00—Macromolecular compounds obtained by polymerising monomers on to polymers of nitrogen-containing monomers as defined in group C08F26/00
- C08F271/02—Macromolecular compounds obtained by polymerising monomers on to polymers of nitrogen-containing monomers as defined in group C08F26/00 on to polymers of monomers containing heterocyclic nitrogen
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- C—CHEMISTRY; METALLURGY
- C08—ORGANIC MACROMOLECULAR COMPOUNDS; THEIR PREPARATION OR CHEMICAL WORKING-UP; COMPOSITIONS BASED THEREON
- C08L—COMPOSITIONS OF MACROMOLECULAR COMPOUNDS
- C08L33/00—Compositions of homopolymers or copolymers of compounds having one or more unsaturated aliphatic radicals, each having only one carbon-to-carbon double bond, and only one being terminated by only one carboxyl radical, or of salts, anhydrides, esters, amides, imides or nitriles thereof; Compositions of derivatives of such polymers
- C08L33/24—Homopolymers or copolymers of amides or imides
- C08L33/26—Homopolymers or copolymers of acrylamide or methacrylamide
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- C—CHEMISTRY; METALLURGY
- C09—DYES; PAINTS; POLISHES; NATURAL RESINS; ADHESIVES; COMPOSITIONS NOT OTHERWISE PROVIDED FOR; APPLICATIONS OF MATERIALS NOT OTHERWISE PROVIDED FOR
- C09K—MATERIALS FOR MISCELLANEOUS APPLICATIONS, NOT PROVIDED FOR ELSEWHERE
- C09K17/00—Soil-conditioning materials or soil-stabilising materials
- C09K17/40—Soil-conditioning materials or soil-stabilising materials containing mixtures of inorganic and organic compounds
Definitions
- the invention is directed to materials and methods for improving moisture absorption and retention in soils and other growing media.
- the materials and methods disclosed herein can improve agricultural yields, reduce agricultural water consumption, and prevent desertification.
- compositions and methods which address one or more of the foregoing needs.
- modified soils capable of absorbing atmospheric moisture, including in low humidity conditions.
- modified soils capable of absorbing and release moisture without electrical energy inputs.
- the modified soils include water harvesting polymer networks admixed with one or more soils, sands, earths, and other growing media.
- Figure 2 depicts (a) Schematic of atmospheric water irrigation system based on the SMAG-soil for plant growth, (b) The moisture capturing and releasing cycles of the SMAG- soil. (c) Photograph of the device with growing radish plants, (d) The RH outside (Environment) and inside (SMAG-soil) the planting chamber starting from 10 AM (day 1) to 10 AM (day 2). (e) The RH outside (Environment) and inside (SMAG-soil) at 2 PM in 20 days.
- Figure 3 includes a depiction of (a) Water uptake of the SMAG.
- the SMAG is able to capture water almost 5 times of its own weight from the air in 12h and store the obtained water until the whole SMAG is heated for water releasing.
- Figure 4 includes a depiction of SEM images of (a) particles of the sandy soil and (b) the surface of the particle in comparison with (c) the SMAG particle in the SMAG-soil and (d) the corresponding surface.
- the sandy soil presents rough surfaces while the SMAG particle shows a typical smooth surface.
- the SMAG-soil is composed of uniformly mixed SMAG particles in the sandy soil.
- Figure 5 includes a depiction of (a) Water capturing and (b) releasing behavior of the SMAG-sand and the sand.
- Water content also known as natural water content or natural moisture content, is the ratio of the weight of water to the weight of the solids in a given mass of soil.
- SMAG can help to increase the water content in sand as well.
- the SMAG-sand presents improved water harvesting performance and water holding capability, indicating that SMAG provides a new platform for water-related soil improvement such as prevention and control of desertification.
- Figure 6 includes a depiction of the plant growing device demonstrating the atmospheric water harvesting and environmental RH management in the evening and at noon of hot summer days (July/ August) in Texas.
- the SMAG- soil Upon a cool and moist environment, the SMAG- soil is exposed to the open air to capture moisture from the atmosphere.
- the SMAG can release water to the soil directly and keep evaporating contained water to the environment to stabilize the RH in the planting chamber.
- Figure 7 includes a depiction of the RH of the environment outside (i.e. , Environment) and inside (i.e., Sandy soil) of the sandy soil based planting chamber as a control sample to the SMAG-soil.
- the RH near the sandy soil is almost the same with the environmental RH.
- Figure 8 includes a depiction of the RH of the environment outside (i.e., Environment, squares) and inside the sand (triangles) and SMAG-sand (circles) chambers. The results clearly show that SMAG can be used on drylands with different drought levels.
- Figure 9 depicts the bud/root length ratio of the plants with the SMAG-soil and the sandy soil over time. Apart from the germination rate and the survival rate, we also observed the bud/root length ratio of plants in the SMAG-soil and the sandy soil without water irrigation. The high ratio in the SMAG-soil case compared with the sandy soil one indicates better water supply to the plants.
- Figure 10 depicts the survival rate of plants in the sand and SMAG-sand when irrigating after several days. The survival rate of plants in the sand decreased over time due to the gradually water loss and resulted low RH near the plants. While the SMAG-sand enables stable and high RH near the plants, leading to the survival of all plants.
- the word “comprise” and variations of the word, such as “comprising” and “comprises,” means “including but not limited to,” and is not intended to exclude, for example, other additives, components, integers or steps.
- “Exemplary” means “an example of’ and is not intended to convey an indication of a preferred or ideal embodiment. “Such as” is not used in a restrictive sense, but for explanatory purposes.
- the moisture harvesting networks include interpenetrating networks of hygroscopic polymers and thermoresponsive water storage polymers.
- Interpenetrating networks include those formed by forming one of the polymers (by polymerization) in the presence of the already-formed other polymer.
- the hygroscopic system absorbs moisture from the air, which is stored and selectively released by the thermoresponsive water storage system.
- a moisture harvesting network can be designated a “super moisture absorbent gels,” or “SMAG.”
- SMAG super moisture absorbent gels
- the storage modulus (G’) and loss modulus (G”) values can be used to determine if a network includes interpenetrating polymers.
- the interpenetrating networks disclosed herein will have lower G’, lower G”, or both lower G’ and G” values than either the pure hygroscopic polymer, pure thermoresponsive water storage polymer, or simple mixtures of hygroscopic polymer and thermoresponsive water storage polymer.
- a simple mixture refers to the combination of two separately formed polymers.
- the storage modulus of the interpenetrating network will be less than the storage modulus of a simple mixture of the same polymers, in the same amounts.
- the storage modulus of the interpenetrating network can be 10% less, 25% less, 50% less, or 75% less than the storage modulus of the equivalent simple mixture of the same polymers.
- the loss modulus of the interpenetrating network will be less than the loss modulus of a simple mixture of the same polymers, in the same amounts.
- the loss modulus of the interpenetrating network can be 10% less, 25% less, 50% less, or 75% less than the loss modulus of the equivalent simple mixture of the same polymers.
- Hygroscopic polymer systems include those capable of extracting water from the atmosphere.
- Hygroscopic polymers include those that can absorb at least 50%, at least 100%, at least 150%, at least 200%, at least 250%, at least 300%, at least 350%, at least 400%, at least 450%, at least 500%, at least 550%, at least 600%, at least 650%, at least 700%, at least 750%, at least 800%, at least 850%, at least 900%, at least 950%, or at least 1000% by weight of water, relative to the dry weight of the polymer.
- Hygroscopic polymers include those having a mass average molar mass of less than 500,000, less than 450,000, less than 400,000, less than 350,000, less than 300,000, less than 250,000, less than 200,000, less than 175,000, less than 150,000, less than 125,000, less than 100,000, less than 75,000, or less than 50,000.
- Exemplary hygroscopic polymers include polyesters, polycarbonates, poly(meth)acrylates, polyacrylonitriles (e.g., ABS resins), poly(meth)acylamides, polysaccharides, polyheterocycles, polysiloxanes, and copolymers thereof.
- the hygroscopic polymer can include one or more ionically charged polymers, for instance, polyacrylic acids, functionalized poly(meth)acrylates and poly(meth)acrylamides such as aminoalkyl (meth)acrylates and (meth)acrylamides.
- exemplary conductive polymers include polypyrroles, polyanilines, polycarbazoles, polyindoles, polyazepines and copolymers thereof.
- Copolymers include polymers derived from two or more monomers including pyrroles, anilines, carbazoles, indoles, azepines, acrylic acids, functionalized (meth)acrylates and (meth)acrylamides.
- the copolymer can be a random copolymer, such as formed when two or more monomers are polymerized together.
- the copolymer can be a block copolymer, such as when individual monomers are polymerized and subsequently joined together.
- the conductive polymer can include one or more doped conductive polymers.
- Doped polymers include polymers that have been oxidized (p-doping) or reduced (n-doping).
- conductive polymers containing basic atoms can be doped under non-redox conditions, for instance by reaction with an acid.
- Exemplary acids include mineral acids such as hydrochloric acid, hydrobromic acid, hydroiodic acid, sulfuric acid, nitric acid, phosphoric acid, perchloric acid, and tetrafluoroboric acid.
- acids include organic acids such as sulfonic acids (e.g., toluenesulfonic acid, camphorsulfonic acid, benzenesulfonic acid, methanesulfonic acid, and trifluorosulfonic acid), as well as carboxylic acids (e.g., trifluoroacetic acid and trichloroacetic acid).
- sulfonic acids e.g., toluenesulfonic acid, camphorsulfonic acid, benzenesulfonic acid, methanesulfonic acid, and trifluorosulfonic acid
- carboxylic acids e.g., trifluoroacetic acid and trichloroacetic acid.
- doped polymers including one or more anions such as chloride, bromide, iodide, sulfate, phosphate, nitrate, perchlorate, tetrafluoroborate, sulfonate, acetates,
- Doped polymers may be characterized by the number of holes per monomer.
- the doping level is at least 0.010, 0.025, 0.050, 0.075, 0.100, 0.125, 0.150, 0.175, 0.200, 0.225, 0.250, 0.275, 0.300, 0.325, 0.350, 0.375, 0.400, 0.425, 0.450, 0.475, 0.500, 0.525, 0.550, 0.575, 0.600, 0.625, 0.650, 0.675, 0.700, 0.725, 0.750, 0.775, 0.800, 0.825, 0.850, 0.875, 0.900, 0.925, 0.950, or 0.975 holes per monomer.
- the doping level can be from 0.010-1.0; from 0.10-1.0; from 0.20-1.0; from 0.30-1.0; from 0.40-1.0; from 0.50-1.0; from 0.60-1.0; from 0.70-1.0; from 0.80-1.0; from 0.90-1.0; from 0.10-0.75; from 0.20-0.75; from 0.30-0.75; from 0.40-0.75; from 0.50-0.75; from 0.10-0.50; from 0.20-0.50; from 0.30-0.50; or from 0.40-0.50.
- the hygroscopic polymer can be a poly(pyrrole), poly(aniline), a mixture thereof, or a copolymer thereof.
- the hygroscopic polymer can have a mass average molar mass of less than 100,000, less than 90,000, less than 80,000, less than 70,000, less than 60,000, or less than 50,000.
- the hygroscopic polymer can have a mass average molar mass from 35,000-100,000, from 50,000-100,000, from 50,000- 90,000, from 50,000-80,000, from 50,000-70,000, from 50,000-60,000, from 35,000-50,000, or from 35,000-75,000.
- Thermoresponsive polymers include those which selectively retain or release water based on temperature. Such systems exhibit a volume phase transition at a certain temperature, resulting in a sudden change of the solvation state. Polymers that become less soluble (or insoluble) in water as temperature increases are characterized by a Lower Critical Solution Temperature (LCST).
- LCST Lower Critical Solution Temperature
- Thermoresponsive polymers that can be used in water harvesting systems can have an LCST from about 10-80° C., 20-70° C., 25-70° C., 30-70° C., 30-65° C., or 30-60° C.
- thermoresponsive water storage polymer can include one or more poly(N-alkylacrylamides), poly(N,N dialkylacrylamides), poly(acrylic acids), poly(vinyl ethers), or poly(vinylcaprolactams).
- Thermoresponsive water storage polymers can be derived from one or more monomers including N-alkylacrylamides, N,N- dialkylacrylamides, vinyl ethers, acrylic acid, and vinylcaprolactam.
- the thermoresponsive water storage polymer can further include monomers such as acrylic acid and/or acrylamide.
- the N-alkylacrylamide can be an N-Ci-C4alkylacrylamide
- the N,N-dialkylacrylamide can be an N,N-di(Ci-C4)alkylacrylamide.
- the alkyl groups in in the N,N-dialkylacrylamides can be the same, or can be different.
- the thermoresponsive polymer is a copolymer, it can be a random copolymer or block copolymer.
- Exemplary thermoresponsive storage polymers can be derived from N-alkylacrylamide and/or N,N-dialkylacrylamide monomers, and may further be derived from acrylic acid, including salts thereof, and/or acrylamide.
- thermoresponsive storage polymer can be derived from one or more monomers such as methylacrylamide, ethylacrylamide, n-propylacrylamide, iso-propylacrylamide, n- butylacrylamide, iso-butylacrylamide, sec-butylacrylamide, tert-butylacrylamide, dimethylacrylamide, diethylacrylamide, di-n-propylacrylamide, di-iso-propylacrylamide, N- methyl-N-ethylacrylamide, N-methyl-N-n-propylacrylamide, N-ethyl-N-n-propylacrylamide, N-methyl-N-iso-propylacrylamide, and N-ethyl-N-iso-propylacrylamide.
- monomers such as methylacrylamide, ethylacrylamide, n-propylacrylamide, iso-propylacrylamide, n- butylacrylamide, iso-butylacrylamide, sec-but
- thermoresponsive polymer is derived from monomers including N-isopropylacrylamide or N,N-di ethylacrylamide, and can further include monomers of acrylamide and/or acrylic acid.
- the thermoresponsive polymer can include block copolymers of polyethylene oxide and polypropylene oxide.
- the thermoresponsive water storage polymer can be a crosslinked polymer.
- Crosslinked polymers can be obtained by polymerizing the monomers in the presence of one or more crosslinking monomers.
- Crosslinked polymers can be derived from one or more monomers having two or more vinyl groups. In some instance, the crosslinking monomer will contain two, three, four, five or six vinyl groups.
- Exemplary crosslinking monomers include (Ci-Cioalkylene) bisacrylamide, such as N,N-methylenebisacrylamide, N,N- ethylenebisacrylamide, N,N-propylenebisacrylamide, and functionalized acrylamides including mono and di-(C3-Cioalkenyl) acrylamide such as N-allylacrylamide or N,N- diallylacrylamide.
- the molar ratio of crosslinking monomers to other monomers can be from 1 : 10,000 to 1 : 100, from 1 : 5,000 to 1 : 100, from 1 :2, 500 to 1 : 100, from 1 :2,000 to 1 : 100, from 1:1,500 to 1:100, from 1:1,000 to 1:100, from 1:750 to 1:100, from 1:500 to 1:100, from 1:250 to 1: 100, from 1:5,000 to 1:500, from 1:5,000 to 1:1,000, from 1:5,000 to 1:2,500, from 1:5,000 to 1:3,000, from 1:4,000 to 1,1000, from 1:4,000 to 1:2000, from 1:7,500 to 1:2,500, or from 1:10,000 to 1:5,000.
- the water harvesting networks do not include a cellulose polymer.
- a cellulose polymer refers to any polysaccharide comprising repeating 1,4-P-glucose units.
- Cellulose polymers, as used herein, include modified cellulose, for instance modified with carboxy, alkyl, or hydroxyalkyl groups.
- the water harvesting networks can be characterized according to the (dry) weight ratio of the hygroscopic polymer to thermoresponsive polymer.
- the ratio of hygroscopic polymer to thermoresponsive water storage polymer can be from about 1:0.05 - 1:1, 1:0.1 - 1:1, 1:0.25 - 1:1, 1:0.50 - 1:1, 1:0.75 - 1:1, 1:0.05 - 1:0.75, 1:0.1 - 1:0.75, 1:0.25 - 1:0.75, 1:0.50 - 1:0.75, 1:0.05 - 1:0.50, 1:0.10 - 1:0.50, 1:0.25 - 1:0.50, or 1:0.25 - 1 :0.75.
- the weight fraction of the hygroscopic polymer can be at least 50%, at least 60%, at least 70%, at least 80%, at least 85%, at least 90%, or at least 95%, relative to the total weight of the polymer network.
- the interpenetrating water harvesting networks can be prepared by polymerizing one component of the network in the presence of the already formed polymer of the other component.
- monomer precursors of the thermoresponsive water storage polymer can be combined with a hygroscopic polymer, and then subjected the conditions suitable to form the thermoresponsive water storage polymer.
- monomer precursors of the hygroscopic polymer can be combined with a thermoresponsive water storage polymer, and then subjected the conditions suitable to form the hygroscopic polymer.
- the water harvesting network Prior to combination with soil, can be particulate in nature.
- the water harvesting network can have an average particle size from 0.1 pm to 500 pm, from 0.1 pm to 250 pm, from 0.1 pm to 100 pm, from 0.1 pm to 50 pm, from 0.1 pm to 25 pm, from 0.1 pm to 10 pm, from 0.1 pm to 5 pm, from 0.1 pm to 1 pm, from 1 pm to 500 pm, from 10 pm to 500 pm, from 25 pm to 500 pm, from 50 pm to 500 pm, from 100 pm to 500 pm, from 250 pm to 500 pm, from 1 pm to 50 pm, from 5 pm to 25 pm, from 10 pm to 100 pm, from 25 pm to 150 pm, from 50 pm to 250 pm, or from 100 pm to 300 pm.
- Soil broadly defined, consists of the top-most layer of earth where plants, fungi, and other organisms grow. Soil particles are natural entities of soil of various sizes including sand, silt and clay, and may exist as separate tiny units or clumped together in crumbs, Soil contains soil particles of different sizes.
- particle size refers to the average particle size of a particle.
- the spaces between the soil particles and/or crumbs are pores. Ideally, pore spaces in soil are large enough to leave room for air and allow excess water to drain away, and small enough to hold sufficient water for growth of plants and other organisms.
- Soil particles are generally defined by their sizes. For example, sand particles can have a particle size of 0.05-2.00 mm; silt particles can have a particle size of 0.002-0.05 mm; and clay particles can have a particle size less than 0.002 mm.
- a soil sample may be characterized by weight percentages of soil particles having different sizes in the soil sample.
- soil texture refers to soil particle size distribution of a soil sample, i.e., weight percentages of soil particles of different sizes in a soil sample.
- the physical and chemical properties of a soil sample may be affected by a change in its soil texture.
- Soil texture is an important characteristic of a soil sample that may influence water absorption, water retention, tillage operation, aeration status and fertility of the soil sample. In general, a soil sample having fine particles and small pore spaces retain more water than a soil sample having larger particles and large pore spaces.
- soil texture groups i.e., sand, loamy sand, sandy loam, loam, silt loam, silt, sandy clay loam, clay loam, silty clay loam, sandy clay, silty clay and clay
- the soil can also include materials such as mulch, topsoil, hydroponics, gravel, and compost.
- Root holding media such as wood fibers, peat, forest bark, straw, loam, clay aggregate (e.g., light expanded clay aggregate or LECA) and particulate plastics material can also be used.
- the water harvesting network can be combined with soil in a variety of ratios, depending on the specific climate to modified soils are deployed in, as well as the specific crop being grown. Increasing the amount of the water harvesting network enhances water uptake from the atmosphere, while increased amounts of soil provide better water and nutrient transport.
- modified soils can include water harvesting networks in an amount from 1-50% by weight, 1-25% by weight, 1-10% by weight, 1-5% by weight, 5-50% by weight, 5-25% by weight, 5-10% by weight, 10-50% by weight, 20-50% by weight, from 40-75% by weight, from 25-75% by weight, from 50-75% by weight, from 75-95% by weight, 5-20% by weight, 5-15% by weight, 20-30% by weight, or 15-35% by weight, relative to the total weight of the modified soil composition.
- the total weight includes any additional components as described herein.
- the structure of the soil assembly is one of the most important factors determining soil health and crop productivity.
- the soil assembly structure greatly influences the drainage and water holding capacity of the soil as well as other crucial factors including the aeration available in the soil.
- a “soil assembly structure” refers to composite of both soil and water harvesting network.
- a healthy soil which is a good aggregate or friable soil with good moisture-holding capacity and plenty of drainages to allow roots to thrive
- the modified soils/soil assembly structure can be produced in particulate form using dry grinding, wet grinding, wet-dry cycling, freeze-thaw cycling, etc.
- the soil assembly structure can further be modified using polyvalent cations like Ca 2+ , Mg 2+ and Al 3+ can bind clay particles together.
- soil particles can be cemented together using humus, organic glues created by fungi and bacteria decomposing organic matter and/or by polymers excreted from roots.
- the soil assembly structure can have an average particle size from 1 pm to 1 cm, for example from 1 pm to 1 mm, from 1 pm to 500 pm, from 1 pm to 250 pm, from 1 pm to 100 pm, from 1 pm to 50 pm, from 50 pm to 1 mm, from 100 pm to 1 mm, from 250 pm to 1 mm, from 500 pm to 1 mm, from 750 pm to 1 mm, from 50 pm to 500 pm, from 50 pm to 250 pm, from 50 pm to 100 pm, from 250 pm to 500 pm, from 250 pm to 750 pm, from 1 mm to 1 cm, from 10 mm to 1 cm, from 100 mm to 1 cm, from 250 mm to 1 cm, from 500 mm to 1 cm, from 10 mm to 500 mm, from 10 mm to 250 mm, from 10 mm to 100 mm, from 50 mm to 500 mm, or from 250
- Suitable nutrients include nitrogen (N), phosphorus (P), potassium (K), calcium (Ca), magnesium (Mg), and sulfur (S), copper (Cu), iron (Fe), manganese (Mn), zinc (Zn), boron (B), molybdenum (Mo), and selenium (Se).
- nitrogen, phosphorous and potassium are especially useful, which may be present in an amount from 0.1-20% by weight, from 0.5-20% by weight, from 1-20% by weight, from 5-20% by weight, from 10-20% by weight, from 0.5-5% by weight, from 1-10% by weight, or from 5-15% by weight.
- Suitable organic acids include humic acid, alginic acid, nucleic acids, amino acids (for example agricultural grade amino acid mixtures), and fatty acids.
- Exemplary fatty acids hexanoic acid, heptanoic acid, octanoic acid, nonanoic acid, decanoic acid, undecanoic acid, dodecanoic acid, tridecanoic acid, tetradecanoic acid, pentadecanoic acid, hexadecanoic acid, heptadecanoic acid, stearic acid (octadecanoic acid), nonadecanoic acid, eicosanoic acid, myristoleic acid, palmitoleic acid, sapienic acid, oleic acid, linoleic acid, a-linolenic acid, a- linolenic acid, arachidonic acid, and eicosapentaenoic acid.
- Organic acids may be present in
- Suitable minerals include silicates, carbonates, sulfates, oxides, phosphates, oxalates, mellitates, citrates, acetates, and formats, for example manganese sulfate, zinc sulfate, copper sulfate, ferrous sulfate, ammonium molybdate, and borax (i.e., sodium borate).
- Minerals include phosphate rocks, potassium rocks, shell rocks, zeolites, bone meal such as fish bone meal, lime, and glacial rock dust. Minerals can be included in amount from 0.1-10% by weight, from 1-10% by weight, from 5-10% by weight, or from 0.1-5% weight.
- Suitable polysaccharides include starch, glycogen, cellulose, and chitin, which may be present in an amount from 0.1-10% by weight, from 1-10% by weight, from 5-10% by weight, or from 0.1-5% weight. When used as an additive, the polysaccharide is distinct from, and not part of the interpenetrating network that forms the SMAG.
- Symbiotic fungi include Mycorrhizae and Rhizobia.
- the modified soils may be formulated at certain pH depending on the intended crop.
- the soil can have a pH from 5.5-7.5, from 5.5-7.0, from 5.5-6.99, from 6-8, from 6-6.99, from 7-8, from 7.01-8, or from 7.5-8.
- the modified soils may have improved water retention compared with a control composition, e.g., the same soil composition but without the water harvesting polymer network.
- the water retention of the soil composition may be as least 25%, 50%, 75%, 100%, 200%, 300%, 400%, or 500% greater higher than that of the control composition.
- the SMAG soil may be prepared by mixing a water harvesting network and soil together.
- the water harvesting network and soil can be combined in a mechanical mixture, dispersed with water, and mixed thoroughly.
- the water may be added prior to mixing, or may be added dropwise while mixing.
- the water: dry component mixture may have a weight ratio from 25:1 to 1:25, from 10:1 to 1:10, from 5: 1 to 1:5, from 2.5: 1 to 1:2.5, from 2.5: 1 to 1:1, from 5:1 to 1:1, from 10:1 to 1: 1 from 10:1 to 5:1, from 1:1 to 2.5:1, from 1:1 to 5:1, from 1:1 to 10:1, or from 1:5 to 1:10.
- the particle size may be controlled through selection of mechanical shear force and duration of grinding.
- the wet material may be dried and then ground or ball milled to give the modified soil composition.
- Suitable drying temperatures include greater than 30 °C., greater than 40° C, greater than 50 °C., greater than6° C, greater than 70 °C., greater than 80° C, greater than 90 °C., and greater than 100° C Particle size may be further controlled using sieve techniques.
- Modified soil compositions may further be subjected to freeze/thaw cycling to optimize soil assembly structure.
- the modified soils may be added to agricultural fields at varying rates, depending on the quality of the existing soil in the agricultural field, the local weather patterns, and the intended crop.
- the modified soil composition can be added to a field at a rate of 0.1-1,000 lb/ft 2 , 1-100 lb/ft 2 , 5-100 lb/ft 2 , 5-50 lb/ft 2 , 5-25 lb/ft 2 , 10-100 lb/ft 2 , 10-50 lb/ft 2 , 10-25 lb/ft 2 , 25-100 lb/ft 2 , 50-100 lb/ft 2 , or 100-500 lb/ft 2 .
- the modified soil may simply be laid on top of the field, while in other embodiments the pre-existing soil may be tilled with the modified soils.
- the seed is contacted or buried in the modified soil (depending on the individual need of the plant species). Seeds disposed in the modified soils germinate more rapidly, and grow more readily, as the modified soils extract moisture from the atmosphere much more readily than conventional soils.
- Suitable seeds that may be germinated in the modified soils include: specialty crops, field crops, trees.
- Specialty crops include vegetables, fruits and seeds.
- the crop is Acai palm, Aardaker, Abaca, Abaca, Abacas, Abiu, Absinthe wormwood, Absinthium, Abyssinian Banana, Abyssinian mustard, Acai berry, Acai palm, Acai palm tree, Acerola, Achacha, Achachairu, Ackee, Adlai, Adlay, Aduki bean, Adzuki bean, African daisy, African ebony, African eggplant, African homed cucumber, African homed melon, African mangosteen, African millet, African moringa, African oil palm, African pear, African pepper, African rice, African spinach, African spinach, African star apple, African tamarind, African teak, Agati, Air potato, Aji, Ajowan, Ajowan caraway, Ajwain, Akee,
- Example 1 Interpenetrating network formed by polymerizing a thermoresponsive polymer in the presence of a hygroscopic polymer
- Example 2 Interpenetrating network formed by polymerizing a hygroscopic polymer in the presence of a thermoresponsive polymer
- N-isopropylacrylamide monomers (56.7 mg), N, N-tetramethylenediamine (1 pL) and deionized (DI) water (1 mL) were mixed and purged with nitrogen for 10 min. Then the N, N-methylenebisacrylamide solution (100 pL, 30 mg/mL), ammonium persulfate solution (APS, 50 pL 22. 8 mg/mL) and PPy-Cl solution (0.5 mL, 10 mg/mL) were added under sonication. The solution was purged with nitrogen for 10 min before adding the APS initiator. The polymerization was carried out for 12 h. The obtained gel was immersed into cold water (5 °C) and hot DI water (ca. 80 °C) alternately for 3 h to remove unreacted monomers. The purification step was repeated 3 times.
- SMAG (1 g) was mixed with soil (or sand, 5 g). The obtained mixture was grinded with dropwise added water (1g). Then the wet SMAG-soil (sand) is dried at 90 °C in a vacuume oven for 12 h.
- SMAG (1 g) was mixed with soil (or sand, 5 g). The obtained mixture was grinded with dropwise added water (1g). Then the wet SMAG-soil (sand) is dried at 90 °C in a vacuume oven for 12 h.
- the as-prepared soil samples are completely dried in vacuum oven at 100 °C. prior the measurement and then set in relative humidity (RH) control system.
- the RH in the container was stabilized to the desired value by a super-saturated solution of specific salt.
- the weight of these samples was carefully tracked by microbalance during the hydration process until the water content reach the equilibrium (no weight change in 30 min).
- the water uptake profile can be obtained by the weight change of samples over time.
- the hydrated soil samples are set in RH control system.
- the RH in the container was stabilized to the designed value by a super-saturated solution of specific salt.
- the weight of these samples was carefully tracked by microbalance during the dehydration process until the water content reach the equilibrium (no weight change in 30 min).
- the water releasing profile can be obtained by the weight change of samples over time.
- Radish seeds were used to test the SMAG soil performance. Since the sprouting period of the radish seed is 4 days, we irrigated the SMAG-soil and the sandy soil every halfday (i.e., 8 times in total), every day (i.e., 4 times in total), every two days (i.e., twice in total), every four days (i.e., once in total) as control groups of the sample with atmospheric irrigation only (Figure 2g).
- the SMAG-soil shows a stable germination rate over 95% with or without liquid water irrigation. In contrast, the germination rate of the sandy soil group is reduced sharply when the water irrigation time is lower than 4 times in total.
- compositions and methods of the appended claims are not limited in scope by the specific compositions and methods described herein, which are intended as illustrations of a few aspects of the claims and any compositions and methods that are functionally equivalent are intended to fall within the scope of the claims.
- Various modifications of the compositions and methods in addition to those shown and described herein are intended to fall within the scope of the appended claims.
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- Life Sciences & Earth Sciences (AREA)
- General Life Sciences & Earth Sciences (AREA)
- Polymers & Plastics (AREA)
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- Medicinal Chemistry (AREA)
- Health & Medical Sciences (AREA)
- Soil Sciences (AREA)
- Engineering & Computer Science (AREA)
- Materials Engineering (AREA)
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| US18/029,293 US20230365865A1 (en) | 2020-10-02 | 2021-10-04 | Atmospheric water harvesting system |
| AU2021355519A AU2021355519A1 (en) | 2020-10-02 | 2021-10-04 | Atmospheric water harvesting system |
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| US20030065296A1 (en) * | 2001-02-26 | 2003-04-03 | Kaiser Thomas A. | Absorbent material of water absorbent polymer, thermoplastic polymer, and water and method for making same |
| US9193636B2 (en) * | 2009-03-04 | 2015-11-24 | Daniela Sternini | Agricultural composition |
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| FR2981658B1 (en) * | 2011-10-21 | 2013-12-06 | Snf Sas | NEW TEMPORARY COVERING METHOD FOR CONTAMINATED SOILS |
| EP2915548B1 (en) * | 2014-03-05 | 2017-11-01 | Evonik Degussa GmbH | Superabsorbent polymers having improved odour control properties and method for the production of same |
| WO2018148482A1 (en) * | 2017-02-09 | 2018-08-16 | Board Of Regents, The University Of Texas System | Atmospheric water harvesting system |
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| US20030065296A1 (en) * | 2001-02-26 | 2003-04-03 | Kaiser Thomas A. | Absorbent material of water absorbent polymer, thermoplastic polymer, and water and method for making same |
| US9193636B2 (en) * | 2009-03-04 | 2015-11-24 | Daniela Sternini | Agricultural composition |
Non-Patent Citations (4)
| Title |
|---|
| FEI ZHAO; XINGYI ZHOU; YI LIU; YE SHI; YAFEI DAI; GUIHUA YU: "Super moisture-absorbent gels for all-weather atmospheric water harvesting", ADVANCED MATERIALS, vol. 31, no. 10, 8 March 2019 (2019-03-08), pages 1 - 20, XP055651918 * |
| MATSUMOTO KAZUYA, SAKIKAWA NOBUKI, MIYATA TAKASHI: "Thermo-responsive gels that absorb moisture and ooze water", NATURE COMMUNICATION, vol. 9, no. 1, 23 November 2018 (2018-11-23), pages 1 - 7, XP055928187 * |
| YANG JIACHEN, ZHANG XUEPING, QU HAO, YU ZHI GEN, ZHANG YAOXIN, EEY TZE JIE, ZHANG YONG‐WEI, TAN SWEE CHING: "A Moisture-Hungry Copper Complex Harvesting Air Moisture for Potable Water and Autonomous Urban Agriculture", ADVANCED MATERIALS, vol. 32, no. 39, 1 October 2020 (2020-10-01), DE , pages 2002936, 1 - 8, XP009536638, ISSN: 0935-9648, DOI: 10.1002/adma.202002936 * |
| ZHOU XINGYI, ZHANG PANPAN, ZHAO FEI, YU GUIHUA: "Super Moisture Absorbent Gels for Sustainable Agriculture via Atmospheric Water Irrigation", ACS MATERIALS LETTERS, vol. 2, no. 11, 1 October 2020 (2020-10-01), pages 1419 - 1422, XP055928185 * |
Cited By (1)
| Publication number | Priority date | Publication date | Assignee | Title |
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| CN118266358A (en) * | 2024-04-16 | 2024-07-02 | 湖北文理学院 | Environment-friendly prevention and control method, system and equipment for plant diseases and insect pests of leguminous plants |
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