
Wasp & Hornet Control Solutions for Farms and Outdoor Environments
Wasp and hornet control is essential for maintaining safe, hygienic outdoor environments across farms, livestock systems, beekeeping operations, and food production areas. These insects are strongly attracted to organic waste, protein sources, and fermenting materials, which can increase pest pressure in agricultural and residential environments.
Effective wasp and hornet pest management focuses on reducing attractants, controlling nesting environments, and improving overall sanitation conditions rather than relying solely on reactive treatments.
Wasp and Hornet Problems in Agricultural Systems
Wasps and hornets are highly adaptive insects that thrive in environments where food, moisture, and shelter are available.
Common attraction sources include:
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Organic waste and food residues
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Protein-based feed and livestock areas
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Compost and fermentation zones
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Moisture-rich bedding or soil areas
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Sheltered structures (roof cavities, sheds, trees, ground nests)
Risks associated with wasp and hornet activity:
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Aggressive behaviour near food and animals
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Nesting in high-traffic farm and residential areas
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Increased risk of stings to humans and livestock
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Contamination of food handling environments
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Stress in beekeeping systems due to hive predation
Natural Wasp and Hornet Control Strategy
Modern pest management focuses on environmental control methods that reduce attraction and nesting suitability. Key strategies include: Reducing moisture in organic waste zones Managing food and protein exposure outdoors Improving sanitation in livestock and feed areas Disrupting nesting environments early Using absorbent mineral systems in waste-prone zones This approach is part of an Integrated Pest Management (IPM) system used in agriculture and environmental management.
Functional Mineral Systems for Pest Environment Control
Functional natural minerals such as attapulgite clay and diatomaceous earth (DE) can support environmental pest management systems through moisture and odour reduction.
These materials do not act as chemical pesticides. Instead, they assist by improving environmental conditions that typically attract pest activity.
Benefits in pest-prone environments:
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Moisture absorption in waste and bedding areas
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Reduction of odours that attract insects
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Improved dry matter stability in organic material zones
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Enhanced hygiene conditions in agricultural systems
Attapulgite Clay in Environmental Management Systems
Attapulgite clay is a naturally occurring magnesium aluminium silicate with a fibrous crystal structure and high adsorption capacity.
In pest management environments, it supports:
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Moisture control in organic waste systems
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Odour reduction in livestock and agricultural areas
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Improved dry, stable conditions in bedding and soil zones
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Enhanced environmental hygiene in high-organic-load settings
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These properties help reduce conditions that encourage wasp and hornet activity.
Diatomaceous Earth (DE) in Pest Management Applications
Diatomaceous earth is a naturally occurring amorphous silica material composed of fossilised diatoms.
In environmental systems, it is used for:
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Moisture absorption and drying of organic materials
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Improving storage and handling conditions for feed and waste
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Supporting reduced insect habitat suitability
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Enhancing integrated pest management systems
Agricultural and Outdoor Applications
Wasp and hornet management is important in:
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Livestock feeding and watering systems
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Poultry and farm environments
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Beekeeping and apiary protection systems
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Composting and organic waste management
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Outdoor food production and processing areas
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Residential and rural properties
Beekeeping and Pollinator Protection Considerations
Wasp and hornet activity can negatively impact beekeeping systems by:
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Preying on weakened hives
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Competing for food resources
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Increasing stress within colonies
Environmental management practices can support hive protection by reducing nearby attractants and improving surrounding sanitation conditions.
Integrated Pest Management Approach
Effective wasp and hornet control combines multiple environmental strategies:
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Moisture reduction in organic systems
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Odour control in waste areas
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Habitat disruption and prevention of nesting
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Improved sanitation in agricultural zones
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Functional mineral-based environmental conditioning
FAQ – Wasp & Hornet Control
How do you control wasps naturally?
Natural wasp control focuses on reducing attractants such as food waste, moisture, and sheltered nesting areas rather than using chemical treatments.
What attracts wasps and hornets to farms?
They are attracted to protein sources, organic waste, fermenting materials, and moist sheltered environments.
Can diatomaceous earth help with wasp control?
Diatomaceous earth supports environmental management by reducing moisture and improving dry conditions that are less favourable for pests.
How do you prevent hornet nests?
Preventing hornet nests involves removing attractants, sealing sheltered areas, and maintaining clean, dry environments.
What is the best natural wasp deterrent?
The most effective approach is integrated environmental management including sanitation, moisture control, and habitat reduction.
Related Applications


Hudson supplies Attapulgite clay & Diatomaceous earth raw ore.
The market for processed & milled Attapulgite clay & calcined food grade Diatomaceous earth natural product solutions is growing as more and more individuals and corporates seek effective natural product solutions.
Contact us for wholesale bulk raw ore for trials or supply interest.
How does it work?
There are numerous uses of diatomaceous earth. It has been known for controlling internal parasites, as a dewormer for pets, as pet and livestock protector against ticks and fleas, to prevent insects from entering your home, as an ingredient in toothpaste, for plant health, as a skin exfoliator, to preserve food, as a natural wasp killer and the list goes on and on.
Because of its many uses and benefits, it's a brilliant household product to have in your home. It’s great when you run into an issue—like having stinging, aggressive wasps too close to your home—and already having exactly what you need (a natural wasp killer) right in your cupboard.
In using diatomaceous earth, either as a pest control product, for health benefits or for any of these other uses listed above, we highly recommend the use of food-grade diatomaceous earth. Food-grade DE is a freshwater form of diatomite. It is safe, purified and has low levels of silica. It can be used around your home, your children and your pets. There is also filter-grade (or pool-grade), which is inedible but has many industrial uses.
How do I get rid of wasps with DE?
1. Getting rid of paper wasps, hornets and yellowjackets—and their nests—without being stung is possible if you remain calm and cautious. Wasps won’t generally sting unless they perceive a threat to their home, so move quietly and discreetly.
To further prevent wasp stings, consider suiting up. Use duct tape to secure your pant legs to your boots or socks and your sleeves to your gloves, and wear an extra layer of clothing, as wasp stingers can penetrate through one layer of clothing.
Follow these steps:
2. Locate areas: Find the areas in your yard where you traditionally have had wasp issues.
Time your approach: Wait until dawn or dusk when wasps are least active.
3. Apply DE: Fill duster with diatomaceous earth. Puff a light but thorough and direct dusting in and around the nest entrance. This applies to both ground nests and above-ground nests.
4. Monitor wasp activity: DE is not a chemical and does not lose potency or evaporate, maintaining effectiveness over several days. If needed, apply a second application after about a week. Reapply after heavy rainfall.
When applying DE powder, it's crucial to wear appropriate protective gear. I recommend gloves, long-sleeved shirts, pants and a mask to prevent skin and respiratory irritation. However, once the dust has settled, additional protective wear is not necessary. Remember, the effectiveness of diatomaceous earth extends well beyond the initial application, providing lasting protection against pests without the use of harsh chemicals.
abstract and full article link to Attapulgite clay & Diatomaceous earth agriculture | horticulture research
Attapulgite can improve yield and total ferulic acid content..
Attapulgite (ATP), as a fertilizer slow-release agent and soil conditioner, has shown remarkable effect in improving the utilization rate of fertilizer and the yield and quality of agricultural products and Chinese medicinal materials. This study aims to explore the effect of ATP on the growth and root quality of Angelica sinensis. .... The results showed that ATP, via the fertilizer slow-release effect, could meet the needs of A. sinensis for nutrients at the root expansion stage, improve the net photosynthetic rate of leaves and aboveground biomass of plants, and promote the transfer and accumulation of nutrients from the aboveground part(source) to the underground root(sink) in advance during the dry matter accumulation period of roots, so as to improve the root weight per plant....
ATP had certain influence on soil respiration, which needs to be further explored from root activity, rhizosphere microorganisms, and soil microorganisms. This study can lay a basis for soil remediation and improvement and ecological cultivation of A. sinensis.
Increased maize yield using slow-release attapulgite-coated fertilizers
The clay attapulgite, also known as palygorskite, is a natural nonmetal clay mineral (Fig. 1). It has a fibrous reticular structure with many nanoscale channels giving it unique physical and chemical properties, such as a large specific surface area, adsorption, suspension, slow releasing, disper- sion, ion-exchanging, water adsorption and retention, and low specific gravity (2.0 – 2.3 g cm − 3 ). Attapulgite is sticky and plastic when wet and when drying shows little shrinkage (Murray 2000; Ye et al. 2013). Attapulgite contains a small amount of elements including Si, Al, Mg, Fe, K, Ca, and Mn and so is expected to be a source of many microelements (Xie et al. 2010). Studies have shown that attapulgite combined with compound fertilizer increases crop yields (Yang et al. 2010). Attapulgite has rich reserves, low price, and is environmentally friendly and so is believed to be the most feasible coating material for slow-release compound fertilizers. The use of coated, compound fertilizers in accordance with the nutrient demands of crop plants at different growth stages can ensure the crop has sufficient amounts of nutrients throughout its whole growth stage. This would greatly improve crop yield, reduce the waste of fertilizers, and lower production costs. Maize ( Zea mays L.) is a crop requiring a large amount of fertilizer to meet the needs of plant growth. In the present study, we prepared attapulgite-coated fertilizers (ACF) by dividing chemical fertilizers into three applications according to the nutrient demands of maize plants in different growth stages, with each part of the fertilizer coated with a layer of attapulgite. Our objective was to determine (1) whether the ACF had a slow-release effect and (2) its impact on crop yield and fertilizer use efficiency in maize. We hypothesized that ACF would significantly improve maize production because their slow release would meet the nutrient demand of maize during the whole growing ...
Fertilizers are the major input in production of grain crops, but in many cases, the amounts of fertilizers applied to crops exceed the requirements of crop growth. Excessive use of N fertilizers leads to losses through leaching, volatilization, and denitrification. The majority of soils in China ’ s semiarid rain- fed agricultural areas are alkaline and calcareous (Zhang et al. 2006). When N fertilizers are applied to calcareous soils, there is inevitable ammonia volatilization, with N 2 O produced in the nitrification – denitrification processes contributing to global climate change. However, in irrigated areas, N fertilizers, when converted into nitrate or ammonium, often move below the root zone and cannot be absorbed by crop roots (Miao et al. 2010).
Attapulgite mixing fertilizer having slow release effect
The invention belongs to the technical field of a fertilizer, and concretely relates to an attapulgite mixing fertilizer having slow release effect, the attapulgite mixing fertilizer is prepared by using attapulgite ore. The attapulgite can use own surface activity, adsorptivity, catalysis performance, filtering effect, ion exchange effect, complexation effect and electrostatic interaction, a soil pH value can be adjusted by two items, and attapulgite can provides appropriate growth environment for crops. The attapulgite can change physical and chemical properties of the soil, reduces soil unit weight, promotes formation of a soil gel state, enhances soil permeability, absorbs harmful heavy metals in the soil, and inhibits insect disease; beneficial elements in the soil can be converted through chelating effect, nutrition balance is reached, crops growth is cooperated, output is increased, and agricultural product quality is improved.
Use inorganic fertilizer in a large number unreasonably for a long time, destroy agricultural land soil structure gradually, change the physico-chemical property of soil, cause soil compaction and degeneration, the effect of increasing production of chemical fertilizer is more and more not obvious, thus cause the yield and quality of farm crop to decline, xenobiotic pollutants can enter animal and human's body by the circulation of water body, air and food chain, thus the health of harm people and animals, cause cancer or chronic disease etc.
Attapulgite dietary supplement on sow performance in commercial farms
Natural pesticides are pesticides that come from natural sources—generally plant or mineral derivatives. Nicotine (extracted from tobacco), Pyrethrum (extracted from chrysanthemum flowers), and Rotenone (extracted from the tuber Derris elliptica) are plant-derived, while pesticides like Boric Acid, Cryolite, and Diatomaceous Earth are mineral-derived.
The active ingredients in Pyrethrum (Pyrethrin I and II and Cinerin I and II) are nonpolar, oily, and lipophilic. These insecticidal compounds are neurotoxins. Because the Pyrethrins are unstable in sunlight, synthetic derivatives (called Pyrethroids) have been developed, which find applications in agriculture and household products (Connell, 1997; Baird and Cann, 2005).
Rotenone is also a neurotoxin, and was initially identified (along with several related compounds) in a crude plant extract used by primitive people to paralyze fish. Poisoning by Rotenone in humans is rare, although adverse effects may be seen especially following oral and respiratory ingestion. It is unstable in sunlight, giving it a short environmental half-life. Toxicity is believed to be the result of Rotenone's inhibition of substrate oxidation in the NADH2 to NAD system, which is critical for nerve function (Vogue et al., 1994).
Radioactive wastewater Eco-friendly adsorbent
Batch adsorption experiments were investigated to remove the radioactive isotope Cs-137 from the real radioactive wastewater. The attapulgite natural clay mineral was characterized and adopted as an adsorbent in a batch adsorption system. Equilibrium was reached after 2 h with a Cs-137 removal efficiency of 97% for attapulgite. The kinetics of Cs-137 adsorption on the attapulgite clay surface were evaluated. The pseudo-second-order kinetic model produced an excellent fit with the experimental kinetic data for attapulgite, indicating that attapulgite was the best adsorption medium.
Dr Novak's Anoxic filtration system: Removing ammonia & reducing nitrates for water clarity
Anoxic filtration is a system that has been developed and trialled over many years by Dr. Kevin Novac Ph.D. Water clarity in pictures of ponds that are using it is amazing. Not only will this system remove ammonia directly from pond water before it can be turned into nitrate, but it also has areas where friendly facultative bugs can live and remove any nitrate that has been produced by nitrogen cycle bugs elsewhere in the pond. The basis of the system is a 24 inch-deep pond, full of what are called Biocenosis Baskets. These baskets are nothing more complicated than a planting basket full of Kitty Litter [Attapulgite clay] with a volcanic material called Laterite poured into a depression in the centre. Some of the baskets must be planted, but all baskets may be planted, according to taste. Dr. Novak is an American, and Kitty Litter is a common American brand name. In the UK, an equivalent is Fuller’s Earth.
Polymer Matrix Nanocomposites
Reinforcing Agent
The development of polymeric nanocomposites using clay minerals as a Nano filler is of great interest to researchers and industry.. this strategy improves the thermal and mechanical performance and changes the surface finishing and the processing characteristics. The Attapulgite (ATP) has a large surface area, strong absorption capacity superior to any other natural mineral, good mechanical resistance and thermal stability. These properties make ATP an ideal candidate for reinforcing polymeric materials.
Milled Attapulgite
Inverse Gas Chromatograph
The most common means of reducing the particle size of solids is by grinding, a process which can affect the surface properties and the behavior of the solid in later stages (granulation, compaction, etc.), and which can influence the end-use properties of the final product. Inverse gas chromatography (IGC) measurements were used here to evaluate the influence of grinding, in a ball mill, on attapulgite. ....The stability of the surface energy with respect to the grinding process was seen to be related to the particular fibrous structure of the attapulgite clay.
Ecofriendly Biodegradation of Hydrocarbons Compounds from Crude Oily Wastewater
Immobilized microorganisms especially bacteria are most used rather than free cells to be protected from the environmental conditions when being used for the bioremediation of environmental pollutants. Herein, two marine’s bacterial isolates were tested for their ability to decompose crude oil. The optimum conditions for effective bacterial degradation e.g., pH, temperature, and inoculum size were investigated. PVA-alginate-clay composite hydrogel beads with different types of incorporated mineral clays were prepared and tested as bacterial carrier for potential bioremediation. Results showed that... attapulgite clay-containing beads recorded maximum degradation% as 78.8 and 75% for both bacterial isolates, when added to immobilization matrices and these percentages could be enhanced under optimal conditions.
Absorption of Oils from WaterHydrophobic Spongy Attapulgite
Attapulgite (ATP) is a natural hydrophilic clay mineral known for its reactive -OH groups on the surface and having a layer chain like structure with exchangeable cations in its framework channel. It was reported by Zhu et al. [18] that modified hydrophobic ATP through cation exchange showed high absorption capacity and selectivity to organic solvents and oils owing to its mesoporous structure and hydrophobic treatment which allow it to be effectively applied for crude oil biodegradation issues. ...
Composite PEM for
Fuel Cell applications
Acidified Attapulgite
A composite proton exchange membrane chitosan (CS)/attapulgite (ATP) was prepared with the organic–inorganic compounding of ATP and CS. The composite membranes were characterized by scanning electron microscope (SEM), X‐ray diffraction (XRD), and fourier transform infrared spectroscopy (FTIR). The mechanical properties, thermal stability, water uptake, and proton conductivity of the composite membranes were fully investigated. The composite membranes exhibited an enhanced mechanical property, dimensional and thermal stability compared to CS membrane, owing to the interface interaction between ATP and CS. The maximum tensile strength of 53.1 MPa and decomposition temperature of 223.4°C was obtained, respectively. More importantly, the proton conductivity of the composite membrane is also enhanced, the composite membrane with 4 wt% ATP content (CS/ATP‐4) exhibited the highest proton conductivity of 26.2 mS cm−1 at 80°C with 100% relative humidity, which is 25.1% higher than pure CS membrane. These results may explore a simple and green strategy to prepare CS‐based PEMs, which have a great potential in the application of proton exchange membrane fuel cells.
Removal of heavy metals (Pb)
Functionalised Attapulgite
Pollution from heavy-metal ions has become a major challenge to the global fight against environmental pollution. Given the availability of various low-cost and environmentally friendly adsorbents, adsorption has become the most efficient technology for the removal of heavy metals from water. In this study, attapulgite (ATP) was directly functionalized by coupling with an aminosilane agent. Analysis showed this maneuver provided a suitable adsorbent for the removal of lead ion (Pb2+) from an aqueous solution. The effects of several parameters including solution pH, contacting time, adsorbent dosage, and initial Pb2+ ion concentration were investigated. Batch sorption results showed that the adsorption process was rapid and over 98% of Pb2+ was removed within 30 min at the optimal pH 4.0. The maximum adsorption capacity at 25°C, calculated by the Langmuir isotherm, was 82.17, 78.80, 61.13, and 28.56 mg/g for γ-divinyltriaminepropyl-methyldimethoxylsilane-grafted attapulgite (KH-103-ATP), γ-aminopropyl-methyldiethoxysilane-grafted attapulgite (KH-912-ATP), N-(β-aminoethyl-γ-aminopropyl)-methyl-dimethoxysilane-grafted attapulgite (KH-602-ATP), and ATP, respectively. Moreover, molecular dynamics simulations of adsorption behaviors of heavy-metal ions at attapulgite surfaces (010) modified by aminosilane agents were carried out. Both the PMF value and diffusion coefficient of metal ions suggest that KH-103-ATP owns the highest rate constant and capacity compared with the other two. And the analysis of free energy and results of XPS characterization revealed that Pb2+ formed covalent bonds with the nitrogen atom of aminosilane agents.
Reduction cadmium in in contaminated fields ricegrains
Attapulgite & oyster shell
Heavy-metal contamination is widespread in agricultural soils worldwide, especially paddy soils contaminated by Cd. Amendment-induced immobilization of heavy metals is an attractive and effective technique, provided that cost-effective materials are used. This field experiment compared three alkaline passivators (attapulgite, processed oyster shell powder, and mixed soil conditioner) at a rate of 2.25 t ha-1 for their effectiveness in decreasing Cd bioavailability in soils and accumulation in rice plants in a paddy field contaminated by Cd (0.38 Cd mg kg-1). The utilization of attapulgite and processed oyster shell powder decreased labile fractions but increased stable fractions of Cd in soils through ion exchange, precipitation and complexation. The addition of attapulgite decreased the concentration of bioavailable Cd in both bulk and rhizosphere soils, whereas the amendment of processed oyster shell powder decreased it only in bulk soil. The Cd accumulation in rice plants correlated significantly with acid-soluble and residual Cd fractions in the rhizosphere soil but not in the bulk soil. The addition of attapulgite and processed oyster shell powder decreased Cd accumulation in rice grains from 0.26 mg kg-1 to 0.14 and 0.19 mg kg-1, respectively, meeting the National Food Safety Standard (< 0.20 mg kg-1). However, the mixed soil conditioner did not decrease the Cd accumulation in rice shoots or grains. This study demonstrated that attapulgite and processed oyster shell powder were economic agents in reducing Cd accumulation in rice grains.
Natural pesticide formulations
Preference for attapulgite
As most pesticides are either insoluble or only slightly soluble in water and must be applied in relatively small amounts over large areas, they are formulated in such a way that a highly concentrated organic chemical can be put into a convenient-to-use and effective form for field use by blending it with additives and inert carriers. The formulation must be easy and economical to use, do the job it is meant for, have an adequate shelf-life, and have no undesirable side effects.....
In 1976 nearly 300,000 tons of various clays were delivered to pesticide manufacturers in the United States alone for use in pesticide formulations (U.S. Department of Agriculture 1976). Of this amount, over 65% was attapulgite. The predominance of attapulgite in the formulation of pesticides in preference to more common clay minerals such as kaolinite and montmorillonite stems from the fact that it is not easily flocculated by electrolytes and does not cake at high relative humidities but remains free-flowing (HADEN and SCHWINT1967).
Increased maize yield
Slow-release attapulgite-coated fertilisers
Slow-release fertilizers could improve the productivity of field crops and reduce environmental pollution. So far, no slow-release fertilizers are suited for maize cultivation in semiarid areas of China. Therefore, we tested attapulgite-coated fertilizers. Attapulgite-coated fertilizers were prepared by dividing chemical fertilizers into three parts according to the nutrient demand of maize in its three main growth stages and coating each part with a layer of attapulgite. This design is novel and unique, satisfying the demands of maize throughout the whole growing season with slow release of nutrients from the coated layers. A field experiment was conducted in 2010 and 2011, using three fertilizer rates, in kg/ha: 94.22 nitrogen (N) and 22.49 phosphorus (P), 139.09 N and 38.98 P, and 254.23 N and 50.98 P. Five types of fertilizers were compared: 20 and 30 % attapulgite-coated chemical fertilizer, 20 and 30 % attapulgite-mixed chemical fertilizer, and chemical fertilizer only. The results show that the soil mineral N and available P of attapulgite-coated fertilizer has a slow-release behavior that allows a better synchronization between nutrient availability and plant needs. Attapulgite-coated fertilizer increased the grain yield by 15.1–18.4 %. The use of attapulgite-coated fertilizers also improved partial factor productivity of N fertilizer by 10.0–26.7 % and P fertilizer by 11.0–26.7 %, compared with the control fertilized without coated formulates. Given their good performance, the attapulgite-coated fertilizers could be a promising alternative slow-release fertilizer for sustainable agriculture in semiarid areas.
Slow-release N & B fertiliser
Attapulgite superabsorbent formulation
To improve fertilizer use efficiency and minimize its negative impact on environment, a slow-release nitrogen and boron fertilizer with water-retention was prepared. Wheat straw was used as skeletal material in copolymerization on which acrylic acid monomer can be grafted to form superabsorbent composite. Urea and borax were introduced to provide nitrogen (N) and boron (B) nutrients, respectively. The product possessed a core/shell structure. Its core was urea in attapulgite and alginate matrix, and the shell was chemically modified wheat straw-g-poly(acrylic acid)/attapulgite (CMWS-g-PAA/APT) superabsorbent composite containing urea and borax. The effects of the amount of cross-linker, initiator, chemically modified wheat straw and attapulgite on water absorbency were investigated and optimized. The water absorbency of superabsorbent synthesized under optimal conditions was 186 g g−1 in tap water. Ammonia-selective electrode and inductively coupled plasma results showed that the contents of the nitrogen and boron of the product were 23.3% and 0.65%, respectively. The water retention capacity and the slow-release behavior of N and B of the product were investigated. The results showed that the product with slow-release and water-retention capacity, being economical, nontoxic in soil and environment-friendly, could be found good application in agriculture and horticultural.
Reduction cadmium in in contaminated fields ricegrains
Attapulgite & oyster shell
Heavy-metal contamination is widespread in agricultural soils worldwide, especially paddy soils contaminated by Cd. Amendment-induced immobilization of heavy metals is an attractive and effective technique, provided that cost-effective materials are used. This field experiment compared three alkaline passivators (attapulgite, processed oyster shell powder, and mixed soil conditioner) at a rate of 2.25 t ha-1 for their effectiveness in decreasing Cd bioavailability in soils and accumulation in rice plants in a paddy field contaminated by Cd (0.38 Cd mg kg-1). The utilization of attapulgite and processed oyster shell powder decreased labile fractions but increased stable fractions of Cd in soils through ion exchange, precipitation and complexation. The addition of attapulgite decreased the concentration of bioavailable Cd in both bulk and rhizosphere soils, whereas the amendment of processed oyster shell powder decreased it only in bulk soil. The Cd accumulation in rice plants correlated significantly with acid-soluble and residual Cd fractions in the rhizosphere soil but not in the bulk soil. The addition of attapulgite and processed oyster shell powder decreased Cd accumulation in rice grains from 0.26 mg kg-1 to 0.14 and 0.19 mg kg-1, respectively, meeting the National Food Safety Standard (< 0.20 mg kg-1). However, the mixed soil conditioner did not decrease the Cd accumulation in rice shoots or grains. This study demonstrated that attapulgite and processed oyster shell powder were economic agents in reducing Cd accumulation in rice grains.
