Repulpable weed seed company

Nanotechnology in agri-food production: an overview

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Abstract

Nanotechnology is one of the most important tools in modern agriculture, and agri-food nanotechnology is anticipated to become a driving economic force in the near future. Agri-food themes focus on sustainability and protection of agriculturally produced foods, including crops for human consumption and animal feeding. Nanotechnology provides new agrochemical agents and new delivery mechanisms to improve crop productivity, and it promises to reduce pesticide use. Nanotechnology can boost agricultural production, and its applications include: 1) nanoformulations of agrochemicals for applying pesticides and fertilizers for crop improvement; 2) the application of nanosensors/nanobiosensors in crop protection for the identification of diseases and residues of agrochemicals; 3) nanodevices for the genetic manipulation of plants; 4) plant disease diagnostics; 5) animal health, animal breeding, poultry production; and 6) postharvest management. Precision farming techniques could be used to further improve crop yields but not damage soil and water, reduce nitrogen loss due to leaching and emissions, as well as enhance nutrients long-term incorporation by soil microorganisms. Nanotechnology uses include nanoparticle-mediated gene or DNA transfer in plants for the development of insect-resistant varieties, food processing and storage, nanofeed additives, and increased product shelf life. Nanotechnology promises to accelerate the development of biomass-to-fuels production technologies. Experts feel that the potential benefits of nanotechnology for agriculture, food, fisheries, and aquaculture need to be balanced against concerns for the soil, water, and environment and the occupational health of workers. Raising awareness of nanotechnology in the agri-food sector, including feed and food ingredients, intelligent packaging and quick-detection systems, is one of the keys to influencing consumer acceptance. On the basis of only a handful of toxicological studies, concerns have arisen regarding the safety of nanomaterials, and researchers and companies will need to prove that these nanotechnologies do not have more of a negative impact on the environment.

Keywords: agriculture, food, nanotechnology, nanoparticle, nanopesticides, nanosensors, smart delivery systems

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Introduction

The practice of agriculture also known as “farming” is the process of producing food, feed, fiber, and many other desired products by the cultivation of certain plants and the raising of livestock. Agriculture is the backbone of most developing countries and it provides food for humans, directly and indirectly. The world’s population will grow to an estimated 8 billion people by 2 025 and 9 billion by 2 050, and it is widely recognized that global agricultural productivity must increase to feed a rapidly growing world population. The agri-food production is of vital importance, as it has been one of the primary drivers of economy. In addition, it can offer routes to value-added crops. Agricultural practices are often in the public eye because climate change, energy and resource constraints, and rapidly growing global population are placing unprecedented pressure on food and water resources. The Food and Agriculture Organization of the United Nations predicts that annual meat production of 200 million tons will be required by 2 050 to respond to the food needs brought about by increasing global population, 1 and this predicted increasing demand for meat puts further pressure on agricultural land because farmers need to grow crops to produce animal feed. Land for food crops also faces increasing competition from the need for crops for other purposes – such as the production of biofuels and pharmaceuticals. Thus food production capacity is faced with many challenges, which include a falling ratio of arable land to population. Agriculture as a source of food is becoming increasingly important in a world of diminishing resources and an ever-increasing global population. 2 Given the increasing world population, it is necessary to use the modern technologies such as nanotechnology and nanobiotechnology in agricultural and food sciences. Nanotechnology has a tremendous potential to revolutionize agriculture and allied fields, including aquaculture and fisheries. Nanoagriculture focuses currently on target farming that involves the use of nanosized particles with unique properties to boost crop and livestock productivity. 3 , 4

Agri-food nanotechnology is multidisciplinary in nature ( Figure 1 ). Nanotechnology application to the agriculture and food sectors is relatively recent compared with its use in drug delivery and pharmaceuticals. 5 Nanotechnology has the potential to protect plants, monitor plant growth, detect plant and animal diseases, increase global food production, enhance food quality, and reduce waste for “sustainable intensifcation”. 6 – 12 Food and agricultural production are among the most important fields of nanotechnology application. 13 – 18

Multidisciplinary nature of agri-food nanotechnology.

Nanotechnology and nanomaterials

Nanoscale refers to size dimensions typically between approximately 1–100 nm (or more appropriately, 0.2–100.0 nm) because it is at this scale that the properties of materials differ with respect to their physical, chemical, and biological properties from those at a larger scale. A single nanometer (nm) is 1 billionth of a meter. Nanotechnology refers to the understanding and control of matter at nanoscale, where a unique phenomenon enables novel applications. 19 However, limiting size in nanotechnology to the 1–100 nm range excludes numerous materials and devices, especially in the pharmaceutical and agricultural fields, and some experts caution against a rigid definition based on a sub-100 nm size. Any form of a material that has one or more dimensions in the nanoscale is known as nanomaterial. According to another definition, “nanomaterial” means a natural, incidental, or manufactured material containing particles in an unbound state or as an aggregate or as an agglomerate and where, for 50% or more of the particles in the number size distribution, one or more external dimension is in the range 1–100 nm. 20 Materials that have one dimension in the nanoscale (and are extended in the other two dimensions) are layers, such as graphene, thin films, or surface coatings. Materials that are nanoscale in two dimensions (and extended in one dimension) include nanowire and nanotube. Materials that are nanoscale in three dimensions are particles, for example precipitates, dendrimers, fullerenes, colloids, and tiny particles of semiconductor materials (quantum dots). Nanomaterial-specific properties derive mainly from their increased relative surface area and quantum effects. Any material that is intentionally produced in the nanoscale to have specific properties or a specific composition is called a manufactured/engineered nanomaterial. Such engineered nanomaterials have different properties when compared with their conventional counterparts. A nanoparticle is a discrete entity that has all three dimensions in the nanoscale. The sizes of different organisms and molecules/biomolecules on the micrometric and nanometric scale are given in Table 1 .

Table 1

Size of different organisms and molecules/biomolecules on the micrometric and nanometric scale

Streptococcus 800–10,000 nm
Escherichia coli 1,300 × 4,000 nm (width × length)
Poxvirus 230 × 320 nm (width × length)
Tobacco mosaic virus 15–300 nm
Poliomyelitis virus 27 nm
Influenza virus 85 nm
Bacteria 100–1,000 nm
Red bood cells 7,000–8,000 nm
Phages T4 24–200 nm
200 × 80–100 nm (length × width)
Caudovirales – icosahedral phages About 65 nm
Inoviridae – filamentous phages About 4–6 nm
Micro Electro Mechanical (MEMS) devices 10–100 nm
Carbon nanotubes 1–3 nm diameter
Single-walled carbon nanotubes 1–2 nm
Multiwalled carbon nanotubes 2–25 nm
Milk fat globule diameter 0.1–100 μm
Milk casein micelles 20–400 nm diameter
Milk lipoproteins 10 nm
Milk globular proteins 3–6 nm
Egg albumin Mean size
DNA molecule About 2.5 nm wide
Hemoglobin 5.5 nm diameter
Myoglobin 3.5 nm diameter
Cytochrome c 3.1 nm diameter
Catalase 10.5 nm diameter
Ferritin 12.2 nm diameter
Virus 30–100 nm
Protein 5–50 nm
Microtubules 25 nm
Ribosomes 25 nm
Quantum dot (CdSe) 8 nm
Dendrimers 10 nm
Zein 200 nm
Nanosensors
The peptidoglycan layer (cell wall) in Gram-positive bacteria 20–80 nm
The peptidoglycan layer (cell wall) in Gram-negative bacteria 2–7 nm + 7–8 nm outer membrane
Adenosine triphosphate synthase 10 nm
Cell membrane About 10 nm
Simple molecules 1–10 nm
Sugar molecule 1 nm
water molecule About 0.3 nm
Hydrogen atom 0.1 nm
Atoms 0.1–1 nm

Biological natural nanoparticles

Biological naturally occurring nanoparticles (nanoclay, tomato carotenoid lycopene, many chemicals derived from soil organic matter, lipoproteins, exosomes, magnetosomes, viruses, ferritin) have diverse structures with wide-ranging biological roles. Biological nanoparticles are often biocompatible and have reproducible structure. Potential biomedical applications of natural and modified biological nanoparticles have been reported. 21

Animals use nanotechnology, where nanostructures help animals climb, slither, camouflage, flirt, and thrive. A good example is the ordered hexagonal packed array of structures in the wings of cicadas (for instance, Psaltoda claripennis Ashton) and termites (for example, family Rhinotermitidae). 22 Studying nanostructured nipple arrays of moth eye facets helps to design better thin-film solar cells. 23 A combination of three functions in one biological nanostructure (antiadhesive properties of insect ommatidia grating in addition to their widely accepted antireflective properties and ability to reduce glare to predators) can be exploited for the development of industrial multifunctional surfaces capable of enhancing light harvesting while reducing light reflection and adhesion. 24 Butterfly wings contain nanostructures that give rise to optical effects such as iridescence, the effect of changing color when viewed from different angles. 25 The tokay gecko uses nanotechnology to stick itself to trees, walls, windows, and even ceilings. Mimicking the agile gecko, researchers have created synthetic “gecko tape” with four times the sticking power of the real thing. 26 It is well known that insects possess ferromagnetic resonance which is temperature dependent and that magnetic nanoparticles in social insects act as geomagnetic sensors. 27

Nanotechnology promises to improve current agriculture practices through the enhancement of management and conservation of inputs in crops, animal production, and fisheries. 28 In recent years, the food industry has made great progress in areas such as the improvement of new packaging products, the development of new functional products, transport and controlled release of bioactive substances, detecting of pathogens by using nanosensors and indicators, and purification of water through the use of nanoparticles. 29 , 30 The potential for improving the effectiveness of agricultural active ingredients using nanosized particles, including functionalized nanocapsules, has been reported. 31 Agricultural applications also include i) nanotechnology-enabled delivery of agriculture chemicals, ii) field-sensing systems to monitor the environmental stresses and crop conditions, and iii) improvement of plant traits against environmental stress and diseases. 32 – 37

Nanoagrochemicals

Pesticides are commonly used in agriculture to improve crop yield and efficiency. Nanopesticides are one of a new strategies being used to address the problems of non-nanopesticides. 38 Nanopesticides cover a wide variety of products, some of which are already on the market. They cannot be considered as a single entity; rather such nanoformulations combine several surfactants, polymers (organic), and metal nanoparticles (inorganic) in the nanometer size range. The lack of water solubility is one of the limiting factors in the development of crop-protecting agents. Microencapsulation has been used as a versatile tool for hydrophobic pesticides, enhancing their dispersion in aqueous media and allowing a controlled release of the active compound. Polymers often used in the nanoparticle production have been reported. 39

First of all, polycaprolactone and poly(lactic) acid nanospheres were used for encapsulation of the insecticide ethiprole. In this case, results indicated that nanospheres do not provide a controlled release of agrochemical active ingredients but, due to their small size, they enhanced the penetration in the plant compared to the classical suspension. 40 In vivo experiments carried out with Egyptian cotton leafworm Spodoptera littoralis larvae indicated that the toxicity of nanoparticles of novaluron resembled that of the commercial formulation. 41

Nanomaterials serve equally as additives (mostly for controlled release) and active constituents. 42 Controlled-release (CR) formulations of imidacloprid (1-(6 chloro-3-pyridinyl methyl)-N-nitro imidazolidin-2-ylideneamine), synthesized from polyethylene glycol and various aliphatic diacids using encapsulation techniques, have been used for efficient pest management in different crops. The bioefficacy of the prepared CR formulations and a commercial formulation were evaluated against major pests of soybean, namely stem fly, Melanagromyza sojae Zehntmer and white fly, Bemisia tabaci Gennadius. Most of the CR formulations of imidacloprid exhibited better control of the pests compared with its commercial formulations; however, of the CR formulations, poly(poly(oxyethylene-1000)-oxy suberoyl) amphiphilic polymer-based formulation performed better than others for controlling of both stem fly incidence and Yellow Mosaic Virus infestation transmitted by white fly. In addition, some of the developed CR formulations recorded higher yield over commercial formulation and control. 43 , 44

CR formulations of carbofuran and imidacloprid provided better or equal control against the aphid, Aphis gossypii and leafhopper, Amrasca biguttula biguttula Ishida on potato crop, than commercial formulations. The residue of carbofuran and imidacloprid in potato tuber and soils was not detectable at the time of harvesting in any one of the formulations. 45 Nanomaterials including polymeric nanoparticles, iron oxide nanoparticles, gold nanoparticles, and silver ions have been exploited as pesticides. Researchers have reported various aspects of nanoparticle formulation, characterization, effect of their characteristics, and their applications in management of plant diseases. 46

Nanoparticles in insects and their potential for use in insect pest management have been reported. 47 Nanotechnology in the management of polyphagous pest Helicoverpa armigera has been reported. 48 The pediculocidal and larvicidal activity of synthesized silver nanoparticles using an aqueous leaf extract of Tinospora cordifolia showed maximum mortality against the head louse Pediculus humanus and fourth instarlarvae of Anopheles subpictus and Culex-quinque fasciatus. Synthesized silver nanoparticles possessed excellent antilice and mosquito larvicidal activity. 49

Nanoencapsulation helps slow release of a chemical to the particular host for insect pest control through release mechanisms that include dissolution, biodegradation, diffusion, and osmotic pressure with specific pH. 50 Nanoparticles loaded with garlic essential oil proved effective against Tribolium castaneum Herbst. 51 The use of amorphous nanosilica as biopesticide has been reported. 52 Nanocopper particles suspended in water have been used since at least 1931, in a product known as Bouisol as fungicide in the growing of grapes and fruit trees. 53

In the research and development stage, nanosized agrochemicals or nanoagrochemicals are mostly nano-reformulations of existing pesticides and fungicides. 54 Nanoformulations are generally expected to increase the apparent solubility of poorly soluble active ingredients, to release the active ingredient in a slow/targeted manner, and/or to protect against premature degradation. 55 Nanopesticides offer a way to both control delivery of pesticide and achieve greater effects with lower chemical dose. Agrochemical companies are reducing the particle size of existing chemical emulsions to the nanoscale, or are encapsulating active ingredients in nanocapsules designed to split open, for example, in response to sunlight, heat, or the alkaline conditions in an insect’s stomach. The smaller size of nanoparticles and emulsions used in agrochemicals is intended to make them more potent. Many companies make formulations that contain nanoparticles within the 1 00–250 nm size range that are able to dissolve in water more effectively than existing ones, thus increasing their activity. 56 Other companies employ suspensions of nanoscale particles (nanoemulsions), which can be either water-based or oil-based and contain uniform suspensions of pesticidal or herbicidal nanoparticles in the range of 200–400 nm. Nanocapsules can enable effective penetration of herbicides through cuticles and tissues, allowing slow and constant release of the active substances. Viral capsids can be altered by mutagenesis to achieve different configurations and deliver specific nucleic acids, enzymes, or antimicrobial peptides acting against the parasites. 57 Silver nanoparticles at 100 mg/kg inhibited mycelia growth and conidial germination on cucurbits and pumpkins against powdery mildew. 58 Silver nanoparticles have received significant attention as a pesticide for agricultural applications. 59 The potential of nanomaterials in insect pest management as modern approaches of nanotechnology, has been reported. 60

Treatment of Bombyx mori leaves with grasserie disease with ethanolic suspension of hydrophobic alumina–silicate nanoparticles significantly reduced the viral load. 61 DNA-tagged gold nanoparticles are effective against Spodoptera litura and would therefore be a useful component of an integrated pest-management strategy. 62 Development of nanobased viral diagnostics including kits can help to detect the exact strain of virus and identify differential proteins in healthy and diseased states during the infectious cycle and the stage of application of therapeutics to stop disease, thus increasing speed as well as power of disease detection. 63

Nanosilica has been successfully employed to control a range of agricultural insect/pest and ectoparasites in animals. Such nanoparticles get absorbed into cuticular lipids (used by insects to prevent death from desiccation) by physisorption and cause insect death by physical means when applied on leaves and stem surfaces. 64 Antifungal activities of polymer-based copper nanocomposites against pathogenic fungi, 65 and silica–silver nanoparticles against Botrytis cinerea, Rhizoctonia solani, Calllectotrichum gloeosporioides, 66 Bipolaris sorokiniana, and Magnaporthe grisea 67 have been reported. Copper nanoparticles in soda lime glass powder showed efficient antimicrobial activity against gram-positive and gram-negative bacteria and fungi. 68 A novel photodegradable insecticide involving nanoparticles has been reported. 69

Specific nanoencapsulated pesticides will have the ability to kill targeted insects only, thereby reducing the effective dose when compared to traditional pesticides. Further, these are absorbed on the surface of the plant, facilitating a prolonged release that lasts for a longer time compared to conventional pesticides that wash away in the rain. 70 Significant mortality of two insect pests, Sarocladium oryzae and Rhyzopertha dominica, after 3 days’ exposure to nanostructured alumina-treated wheat was reported. 71 Halloysite nanotube has potential to be applied as a nanocontainer for encapsulation of chemically and biologically active agents such as agromedicines and pesticides. 72 , 73

It is essential to remove weeds for increasing the yield of any crop and weeding using nanoherbicides is seen as an economically viable alternative. Conventional herbicides have proved highly effective in controlling weeds without damage to crops or environment. However, chemical weed management under rain-fed areas depends on the moisture availability during the application of herbicides. Lack of moisture limits the use and efficiency of the application. The nano-silicon carrier comprising diatom frustules (pore size 1–100 nm) has been used for delivery of pesticides and herbicides in plants as well as in hormonal waste-water treatment. 74 CR formulation is superior to its counterpart and results in a higher yield and better crop quality. Such a formulation also finds use in active-agent herbicides, pesticides, and plant growth regulators. 75 , 76

The potential application of a layered single-metal hydroxide, particularly zinc-layered hydroxide, as the host for the preparation of a nanohybrid compound with a tunable CR property containing two herbicides simultaneously has been demonstrated. In this context, a nanohybrid containing both herbicides (4-(2,4-dichlorophenoxy) butyrate [DPBA] and 2-(3-chlorophenoxy) propionate [CPPA]) labeled as ZCDX was found a suitable host for the CR formulation of two herbicides, namely DPBA and CPPA, simultaneously. The monophasic, well-ordered zinc-layered hydroxide nanohybrid containing two herbicides, CPPA and DPBA, was found to be composed of a higher loading of DPBA compared to CPPA between the zinc-layered hydroxide inorganic interlayers, with percentage contributions of 83.78% and 16.22%, respectively. The release rate of both CPPA and DPBA was found to be different, suggesting that the anionic guest molecules’ sizes and the interactions between the host and guest could control the release kinetics. 77

Researchers reported a functional hybrid nanocomposite based on the intercalation of two herbicides’ anions (2,4-dichlorophenoxy acetate and 4-chlorophenoxy acetate) with zinc–aluminum-layered double hydroxide. 78 CR formulations of nanocomposites such as 4-chlorophenoxy acetate–zinc–aluminium-layered double hydroxide and 4-dichlorophenoxy acetate–zinc–aluminum-layered double hydroxide were reported. 79 – 81 Researchers reported manganese carbonate core-shell nanoparticles loaded with pre-emergence herbicide pendimethalin programmed to release smartly based upon the requirements. 82

The field of nanotechnology opens up novel applications in agriculture. 83 , 84 Nanoencapsulation is currently the most promising technology for protection of host plants against insect pests. With nanoencapsulation techniques it is possible to step down the chemical release under controlled situations, reducing the current application dosage and improving efficiency. 85

Nanoparticles can be used in the preparation of new formulations like pesticides, insecticides, and insect repellants. 86 – 88 Researchers have reported nanosilver and titanium dioxide nanoparticle applications in management of plant diseases. 89

Fungicidal efficiency of sulfur nanoparticles against two phytopathogens, Fusarium solani (isolated from an infected tomato leaf, responsible for early blight and Fusarium wilt diseases) and Venturia inaequalis (responsible for the apple scab disease) has been reported. 90

Pheromones are naturally occurring volatile semiochemicals and are considered ecofriendly biological control agents. Pheromones immobilized in a nanogel exhibited high residual activity and excellent efficacy in an open orchard. Environment-friendly management of fruit flies involving pheromones for the reduction of undesirable pest populations responsible for decreasing yield and crop quality has been reported. Within this scope, the preparation of a nanogel from a pheromone, methyl eugenol ( Figure 2 ) using a low-molecular-mass gelator such as all-trans tri(p-phenylene vinylene) bis-aldoxime ( Figure 3 ) was reported.

US20040016527A1 – Multi-purpose paper, manufacturing method thereof and the application thereof – Google Patents

Publication number US20040016527A1 US20040016527A1 US10/397,105 US39710503A US2004016527A1 US 20040016527 A1 US20040016527 A1 US 20040016527A1 US 39710503 A US39710503 A US 39710503A US 2004016527 A1 US2004016527 A1 US 2004016527A1 Authority US United States Prior art keywords paper uneven larger cultivating seed Prior art date 2001-10-26 Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.) Granted Application number US10/397,105 Other versions US7040054B2 ( en Inventor Ching-Chung Huang Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.) Yuen Foong Yu Paper Mfg Co Ltd Original Assignee Yuen Foong Yu Paper Mfg Co Ltd Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.) 2001-10-26 Filing date 2003-03-28 Publication date 2004-01-29 2001-10-26 Priority to US10/001,318 priority Critical patent/US6811653B2/en 2003-03-28 Application filed by Yuen Foong Yu Paper Mfg Co Ltd filed Critical Yuen Foong Yu Paper Mfg Co Ltd 2003-03-28 Priority to US10/397,105 priority patent/US7040054B2/en 2004-01-29 Publication of US20040016527A1 publication Critical patent/US20040016527A1/en 2006-05-09 Application granted granted Critical 2006-05-09 Publication of US7040054B2 publication Critical patent/US7040054B2/en 2021-11-04 Adjusted expiration legal-status Critical Status Expired – Lifetime legal-status Critical Current

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OCCO LYCAIKOWRPUZTN-UHFFFAOYSA-N 0.000 description 6
  • 238000000034 method Methods 0.000 description 6
  • 229920002401 polyacrylamide Polymers 0.000 description 6
  • 239000000843 powder Substances 0.000 description 6
  • GWEVSGVZZGPLCZ-UHFFFAOYSA-N titan oxide Chemical compound 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  • 125000000129 anionic group Chemical group 0.000 description 4
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  • 235000016623 Fragaria vesca Nutrition 0.000 description 2
  • 240000009088 Fragaria x ananassa Species 0.000 description 2
  • 235000011363 Fragaria x ananassa Nutrition 0.000 description 2
  • 239000001828 Gelatine Substances 0.000 description 2
  • 229920000881 Modified starch Polymers 0.000 description 2
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  • 235000015334 Phyllostachys viridis Nutrition 0.000 description 2
  • 229920001748 Polybutylene Polymers 0.000 description 2
  • 239000002202 Polyethylene glycol Substances 0.000 description 2
  • 229920001451 Polypropylene glycol Polymers 0.000 description 2
  • 239000004372 Polyvinyl alcohol Substances 0.000 description 2
  • AKEJUJNQAAGONA-UHFFFAOYSA-N Sulfur trioxide Chemical compound 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O=S(=O)=O AKEJUJNQAAGONA-UHFFFAOYSA-N 0.000 description 2
  • 239000002253 acid Substances 0.000 description 2
  • 150000008051 alkyl sulfates Chemical class 0.000 description 2
  • 239000011425 bamboo Substances 0.000 description 2
  • 239000003738 black carbon Substances 0.000 description 2
  • 238000004061 bleaching Methods 0.000 description 2
  • ODINCKMPIJJUCX-UHFFFAOYSA-N calcium monoxide Chemical compound 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  • PEDCQBHIVMGVHV-UHFFFAOYSA-N glycerine Chemical compound 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  • 235000011187 glycerol Nutrition 0.000 description 2
  • 235000008216 herbs Nutrition 0.000 description 2
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  • CPLXHLVBOLITMK-UHFFFAOYSA-N magnesium oxide Chemical compound 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  • OKKJLVBELUTLKV-UHFFFAOYSA-N methanol Chemical compound data:image/svg+xml;base64,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 data:image/svg+xml;base64,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 OC OKKJLVBELUTLKV-UHFFFAOYSA-N 0.000 description 2
  • 230000004048 modification Effects 0.000 description 2
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[O-2].[O-2].[O-2].[Al+3].[Al+3] PNEYBMLMFCGWSK-UHFFFAOYSA-N 0.000 description 1
  • RQNWIZPPADIBDY-UHFFFAOYSA-N arsenic Chemical compound 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[As] RQNWIZPPADIBDY-UHFFFAOYSA-N 0.000 description 1
  • 229910052785 arsenic Inorganic materials 0.000 description 1
  • 239000000292 calcium oxide Substances 0.000 description 1
  • 239000002775 capsule Substances 0.000 description 1
  • 239000001768 carboxy methyl cellulose Substances 0.000 description 1
  • 235000010948 carboxy methyl cellulose Nutrition 0.000 description 1
  • 239000008112 carboxymethyl-cellulose Substances 0.000 description 1
  • 238000009264 composting Methods 0.000 description 1
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  • 229910052725 zinc Inorganic materials 0.000 description 1
  • 239000011701 zinc Substances 0.000 description 1

Images

Classifications

    • D — TEXTILES; PAPER
    • D21 — PAPER-MAKING; PRODUCTION OF CELLULOSE
    • D21H — PULP COMPOSITIONS; PREPARATION THEREOF NOT COVERED BY SUBCLASSES D21C OR D21D; IMPREGNATING OR COATING OF PAPER; TREATMENT OF FINISHED PAPER NOT COVERED BY CLASS B31 OR SUBCLASS D21G; PAPER NOT OTHERWISE PROVIDED FOR
    • D21H21/00 — Non-fibrous material added to the pulp, characterised by its function, form or properties; Paper-impregnating or coating material, characterised by its function, form or properties
    • D21H21/14 — Non-fibrous material added to the pulp, characterised by its function, form or properties; Paper-impregnating or coating material, characterised by its function, form or properties characterised by function or properties in or on the paper
    • D21H21/36 — Biocidal agents, e.g. fungicidal, bactericidal, insecticidal agents
    • A — HUMAN NECESSITIES
    • A01 — AGRICULTURE; FORESTRY; ANIMAL HUSBANDRY; HUNTING; TRAPPING; FISHING
    • A01C — PLANTING; SOWING; FERTILISING
    • A01C1/00 — Apparatus, or methods of use thereof, for testing or treating seed, roots, or the like, prior to sowing or planting
    • A01C1/04 — Arranging seeds on carriers, e.g. on tapes, on cords Carrier compositions
    • A01C1/044 — Sheets, multiple sheets or mats
    • 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
    • C09K17/52 — Mulches
    • D — TEXTILES; PAPER
    • D21 — PAPER-MAKING; PRODUCTION OF CELLULOSE
    • D21H — PULP COMPOSITIONS; PREPARATION THEREOF NOT COVERED BY SUBCLASSES D21C OR D21D; IMPREGNATING OR COATING OF PAPER; TREATMENT OF FINISHED PAPER NOT COVERED BY CLASS B31 OR SUBCLASS D21G; PAPER NOT OTHERWISE PROVIDED FOR
    • D21H17/00 — Non-fibrous material added to the pulp, characterised by its constitution; Paper-impregnating material characterised by its constitution
    • D21H17/02 — Material of vegetable origin

    Abstract

    A multi-purpose paper, a manufacturing method thereof, and an application thereof are provided. The method of manufacturing the multi-purpose paper comprises steps of (a) providing a papermaking material and obtaining a clean paper pulp by treating the papermaking material, (b) adding at least one functional additive into the clean paper pulp to form the multi-purpose paper, and (c) processing the multi-purpose paper to form thereon an uneven surface structure. The cultivating paper has the combined functions of weed control, pest control, supplying the required nutrients to plants to help develop the root system, maintaining moisture and breath for the root system. The multi-purpose paper can be carriers of agricultural antagonistic microorganisms and serve as the basic functional substrate for weed control, pest control, sowing, growing seedlings, fertilization, fertilizer saving, manpower saving and organic cultivating.

    Description

      FIELD OF THE INVENTION

    The present invention relates to a multi-purpose paper, a manufacturing method thereof, and an application thereof. [0001]

    Generally, the agricultural production comprises the steps of soil preparation, sowing, fertilization, hand weeding and harvesting, each of which requires a huge amount of manpower. Particularly, the steps of hand weeding and harvesting are the most manpower-consuming processes. To achieve the purposes of weeding and growing seedling, the farmers conventionally cover a plastic cloth over the land to retard the growth of weeds and use a plastic seedling-growing plate. However, after the crops are harvested or the seedlings are transplanted, the farmer has no ideal way in dealing with the useless plastic cloth and plate. Due, to the plastic cloth and plate cannot be decomposed naturally, it tends to cause the second pollution once the plastic cloth and plate are discarded. In addition, the plastic cloth and plate will result in poor water and air-permeability and influence the ecological environment of soil microorganisms, root system of cultivated seedling, and the growth of crops. [0002]

    The paper product has the advantage of being decomposable in natural environment easily. After achieving the purpose of agricultural producing, it can be naturally disintegrated and integrated as part of soil after plowing so that it has no disadvantages of recycling, handling the discards and environmental pollution as compared to those by traditional plastic cloth and plate. Therefore, it is desired to develop an agricultural paper material to replace the traditional plastic cloth and plate, or the cultivating medium, which it would be an advanced development in the aspects of economic benefits and environmental protection. [0003]

    The papermaking material comes typically from the natural organic wood fibers, which are also excellent carriers for microorganisms. However, the conventional paper contains large amounts of chemical additives which have nothing to do with the required features of agricultural crops. Thus the conventional waste paper is not suitable to be used in agricultural application of farmland cultivating. [0004]

    Therefore, if the functional components can be added and adjusted in the papermaking material during the manufacturing process in making the paper product, it can be sufficiently applied in agriculture as desired. It is therefore an object of the present invention to provide a multi-purpose paper for being applied in agricultural planting and cultivating to solve the problems resulting from weed control, pest control, sowing, growing seedlings, fertilization, fertilizer saving, manpower saving and special cultivating, thereby the agricultural producing possibly becoming a permanent operation. [0005]

    It is therefore an object of the present invention to provide a multi-purpose agricultural paper having the features of non-polluting, biodegrading and strong light-blocking ability so that it can be used as carriers of antagonistic microorganisms for being applied in plant cultivating and being used as functional basic materials to control weeds, control pests, sow seeds, grow seedlings, supply fertilizer, save fertilizer, save manpower and cultivate special species. [0006]

    According to the present invention, a method of manufacturing the multi-purpose paper comprises steps of (a) providing a papermaking material and obtaining a clean paper pulp by treating the papermaking material, (b) adding at least one functional additive into the clean paper pulp to form the multi-purpose paper, and (c) processing the multi-purpose paper to form thereon an uneven surface structure. [0007]

    Preferably, the papermaking material is one selected from a group consisting of waste cardboard case fibers, the remaining basic materials after being taken away the bottom surface paper of waste cardboard case, biodegradable plant fibers and polymer fibers. [0008]

    In accordance with the present invention, the step (b) comprises steps of classifying, pulp-dispersing, coarse pulp-clarifying, fiber-separation, coarse screening, fine pulp-clarifying, heat-dispersion, fine screening, bleaching, pulp-washing and pulp-refining. [0009]

    In accordance with the present invention, the functional additive is one selected from a group consisting of Camellia seed cake’s powder, calcium carbonate, dry strength agent, wet strength agent, weed control agent, pest control agent and bacterial control agent. [0010]

    In accordance with the present invention, the Camellia seed cake’s powder is added into the clean paper pulp at 1% by weight for preventing golden apple snails (Pomacea Canaliculata Lamarck) and increasing dispersive level of fibers during manufacturing. [0011]

    Preferably, the calcium carbonate is added into the clean paper pulp at a dosage based on classification of the papermaking material, sieving ratio of fibers, desired water-absorbing ability and air permeability of the paper for increasing the physical strength of the paper and promoting the proliferation of microorganisms. [0012]

    Preferably, the weed control agent is one of inorganic and organic packing materials selected from a group consisting of black carbon, silicon dioxide and titanium dioxide. [0013]

    Preferably, the dry strength agent is one of acidic and neutral agents of one of anionic and cationic ones selected from a group consisting of melamine formaldehyde resin, polymeric amine-epichlorohydrin resin, phenolic resin, glyoxalated polyacrylamide resin, polyacrylamide resin, raw starch, and modified starch. [0014]

    Preferably, the wet strength agent is one of acidic and neutral agents of one of anionic and cationic ones selected from a group consisting of melamine formaldehyde resin, polymeric amine-epichlorohydrin resin, phenolic resin, and glyoxalated polyacrylamide resin. [0015]

    Preferably, the multi-purpose paper includes a corrugated paper layer having a basic weight ranged from 90 g/m [0019] 2 to 150 up g/m 2 and a surface paper layer having a basic weight ranged from 90 g/m 2 to 300 up g/m 2 in order to have high wet strength, water-preventing ability and water-permeating ability.

    Preferably, the multi-purpose paper is a paper substrate with a thickness ranged from 0.2 mm to 0.3 mm. [0020]

    Preferably, the paper substrate has a water-absorbing ability larger than Cobb, 1 Min, 20 gsm and a wet-rupture strength in longitudinal/transverse direction lower than 1.0 kg/m [0021] 2 after 2 hours immersion.

    Preferably, the paper substrate has a wet-breaking strength in longitudinal/transverse direction lower than 1.0 kg/m [0022] 2 after 2 hours immersion.

    Preferably, the paper is directly obtained from a waste cardboard case, and can be used in one of a group consisting of large area fields, home gardening, golf field, paddy fields and dry farmlands of general or organic farming. [0025]

    Preferably, the multi-purpose paper can be used in one of domestically cultivating box containing organic soil or organic medium and industrial applications selected from, a group consisting of indoor and outdoor net supports, papery recyclable cultivating plate, and artificial indoor planting system with devices of temperature control, cold and hot water pipes, and light control. [0026]

    Preferably, the uneven surface structure is used for sowing at least a seed thereon, and the method further includes a fixing layer for fixing the seed, wherein the fixing layer comprises manufacturing steps of (a) providing a papermaking material and obtaining a clean paper pulp by treating the papermaking material; and (b) adding at least one functional additive into the clean paper pulp to form the multi-purpose paper. [0027]

    Preferably, the fixing layer is a thin layer die-cast with at least a lattice for positioning and wrapping therein at least the seed. [0028]

    Preferably, the multi-purpose paper has light-blocking weed-preventive ability and natural porous carriers suitable for proliferating microorganisms thereon so that one of antagonistic microorganism for controlling a specific disease of a plant, natural pest control component and bacterial control agent can be coated, sprayed or immersed thereon and the multi-purpose paper can be used for covering one of land and cultivating medium for one of sowed plant and transplanted plant. [0029]

    Preferably, the antagonistic microorganism is one of radioactive antagonistic bacterium for resisting root nodule nematode and antagonistic bacterium of radish seedling wilt disease. [0030]

    Preferably, the natural pest control component is selected from a group consisting of sodium dodecyl sulfate (SDS), linear alkyl sulfate (LAS), agricultural waste containing sponging and methyl alcohol extracted from one of Camellia seed cake and tobacco powder. [0031]

    Preferably, the one of the antagonistic microorganism, the pest control component and the bacterium control agent can be coated on the surface of the paper by an adhesive material, wherein the adhesive material is a natural neutral material of one of natural amylum gel and carboxymethyl cellulose (CMC). [0032]

    Preferably, the method further comprises a step of coating fertilizer powder or capsule on the paper by one of spraying and coating technologies, to form a slowly releasing organic or chemical fertilizer coating, thereby providing required nutrition for the plant. [0033]

    Preferably, the method adjusts a formula of the coating according to requirements and features of a specific crop, and sprays or coats on a specific position of the paper. [0034]

    Preferably, the method further comprises a step of punching plural holes on the paper to partly pierce at least one of the fertilizer coating and the uneven surface structure, and inlaying the seed in punched holes to allow the seed to root downwardly upon germination and to guide roots of the plant to grow in a diverging room formed under the uneven surface structure. [0035]

    Preferably, the method further comprises one of a step of attaching a fixing layer on the paper by an adhesive material for securing the seed on the paper, and a step of using the paper oppositely according to a specific requirement of crops, wherein the adhesive material is one selected from a group consisting of glue spray, starch and carboxymethyl cellulose (CMC). [0036]

    Preferably, the seed is further treated according to features of the seed by using a chemical seed-treating agent cooperating with one selected from a group consisting of alginic soda acid, gelatine and polyvinyl alcohol for protecting the germination of the seed, wherein the chemical seed-treating agent is selected from a group consisting of ethylene glycol, propylene glycol, butylenes glycol, polyethylene glycol, polypropylene glycol, polybutylene glycol glycerine and 2-octyl glycol. [0037]

    Preferably, the seed is selected from a group consisting of seeds covered with a paper pulp, seeds covered with a polymer compound, seeds of grains, seeds of medicinal herbs, seeds of economical plant, seeds of greensward, seeds of vegetables, seeds of fruits, seeds of flowers and artificial seeds cultivated from a cell culture. [0038]

    Preferably, the method further comprises steps of overall embossing, punching holes, and making the uneven surface structure according to requirements of a specific crop, to increase water-absorbing ability, air permeability, size stability and limpness of dry and wet alternation. [0039]

    According to another aspect, a method of manufacturing a multi-purpose paper for cultivating comprising steps of (a) providing a papermaking material, (b) adding at least one functional additive into said papermaking material to form the multi-purpose paper, and (c) processing the multi-purpose paper to form the multi-purpose paper thereon an uneven surface structure. [0040]

    According to another aspect, a method of manufacturing a multi-purpose paper for cultivating comprising steps of (a) providing a papermaking material and obtaining a clean paper pulp by treating the papermaking material, (b) adding at least one functional additive into the clean paper pulp to form the multi-purpose paper, and (c) processing the multi-purpose paper to form the multi-purpose paper having an uneven surface structure sowing at least a seed thereon, wherein the uneven surface structure is used for placing thereon the seed and forms thereunder a diverging space to help develop the root system of the seed. [0041]

    According to a further aspect of the present invention, a multi-purpose paper composes: a paper body having an uneven surface structure and at least one functional additive distributed or wrapped inside the multi-purpose paper. [0042]

    In accordance with the present invention, the surface paper of the uneven surface structure has an air permeability larger than 102 sec/100 cc, breaking force larger than 2 kg/cm [0043] 2 , dry pulling force in longitudinal direction larger than 4 kg/15 mm, dry pulling force in transverse direction larger than 105 kg/15 mm, wet pulling force in longitudinal direction larger than 3.5 kg/cm 2 , wet pulling force in transverse direction larger than 1.4 kg/cm 2 , water splash level larger than R3, and gluing ability degree larger than 120 sec.

    Preferably, the multi-purpose paper has a basic air permeability larger than about 50 sec/100 cc, except the surface paper of the uneven surface structure has an air permeability larger than 102 sec/100 cc. [0044]

    Preferably, the multi-purpose paper can be used in one of growing seedling of shallow crops and an operation system of cultivating and obtaining seedling. [0045]

    The foregoing and other features and advantages of the present invention will be more clearly understood through the following descriptions with reference to the drawings, wherein: [0047]

    FIG. 1 is a diagram showing the cultivating application of the multi-purpose paper according to a preferred embodiment of the present invention; [0048]

    FIG. 2 is a diagram showing the structure of the multi-purpose paper according to a preferred embodiment of the present invention; [0049]

    The present invention will now described more specifically with reference to the following embodiments. Please refer to FIG. 1 and FIG. 2, which are the diagrams showing the structure and the cultivating application of the multi-purpose paper according to preferred embodiments of the present invention. The main elements are as follows: [0050]

    1. The pest control microorganism-made agent and fertilizer [0051] 43 with long-term effectiveness can be coated on the bottom surface paper of cardboard case, the general waste cardboard case after taken away the bottom surface paper thereof, or the surface paper of the uneven surface structure 41 by spraying and coating to form the coated layer of pest control microorganism-made agent 50. In a special design of seed wrapping lattice, a fixing layer 60 is a thin layer die-cast with at least a lattice for positioning the seed 100 on the surface paper of the uneven surface structure 41 and wrapping the seed 100 with protective agent. The fixing layer 60 must have certain wet-breaking strength and wet-rupture strength after immersion so as to help the germination and the downward growth of the root system.

    2. The material of the bottom surface paper [0052] 42 is Kraft paper with high air-permeability, high water-permeability, high gluing ability, and high wet-breaking strength.

    3. The material of the uneven surface structure [0053] 41 is preferable with low wet-breaking strength, high water-permeability, and the feature of easily forming the uneven surface structure.

    4. The multi-purpose paper with the uneven surface structure [0054] 41 for weed control is fixed by the biodegradable bamboo spike 21 for wind-proof, and a spraying system 10 is mounted on the top thereof for water supply.

    5. The seed [0055] 100 and the fertilizer 43 with long-term effectiveness are attached directly on the concave part of the uneven surface structure 41 or wrapped inside the bottom of the uneven surface structure 41. Afterward, the seed 100 is covered by a thin wooden medium 31 or soil to maintain the dampness and suppress the root system to grow downwardly. For short-term crops, the wooden medium 31 is covered on the uneven surface structure 41 with a thickness of 1˜2 cm after sowing the seed thereon, to help the germation.

    6. For long-term crops, a supporting nylon net [0056] 22 having a supporting elevating rack 23 is mounted on the top the multi-purpose paper. The height of the supporting nylon net 22 can be adjusted by the supporting elevating rack 23 to help the plant grow upwardly through supporting the weight without suppressing the root system.

    7. For saving manpower, the auto-spraying system [0057] 10 is mounted on the top of the multi-purpose paper to supply water, liquid fertilizer, and the nutrient for organic cultivating only.

    8. The cultivating system of the present invention can be used for the net support form of elevatedly cultivating, in order to meet the requirements of auto-harvesting, ergonomics of human body and the environmental cultivating on the mountainside land. [0058]

    9. The multi-purpose paper can be used oppositely, wherein the bottom surface paper [0059] 42 is faced upward, the fixing layer 60 is faced downward and placed on the medium or the surface of the soil 80. Then, the bamboo spike 21 is used to punch holes on the multi-purpose paper for planting long-term crops such as strawberry and melon to achieve the purposes of weed control, pest control, inproving the ground temperature, improving the stability of paper size and easily biodegradable composting. When the seed is attached on the uneven surface structure 41, a tiny hole is provided beneath the seed to let the root system grow downwardly and penetrate the multi-purpose paper and to help the cotyledon grow upwardly.

    10. The multi-purpose paper can be applied for growing and obtaining seedlings. For example, the stem of strawberry can be directly planted on the multi-purpose paper for obtaining seedling easily and obtaining excellent root system [0060] 44 grew under the uneven surface structure 41.

    11. The cultivating system of the present invention can also be applied for long-term crop wit deep roots. The cultivating medium is placed under the multi-purpose paper with a thickness of 15˜20 cm, wherein the cultivating medium can be placed on the water-preventing papery plate or box. The plate or box can be recycled or composted after use, and a water pipe for adjusting temperature can be mounted therein for stabilizing the growth of the root system. [0061]

    The present invention discloses a multi-purpose paper made of convertible waste pulp for weed control, pest control, and fertilizing. The papermaking material, is one selected from a group consisting of waste cardboard case fibers, biodegradable plant fibers and polymer fibers. After the steps of classifying, pulp-dispersing, coarse pulp-clarifying, fiber-separation, coarse screening, fine pulp-clarifying, heat-dispersion, fine screening, bleaching, pulp-washing and pulp-refining, a clean pulp is obtained and sent to the paper making machine. The waste pulp is treated inside the paper making machine and becomes the paper roll after drying. The paper roll will be treated with the processes of repeated rolling, embossing, making the uneven surface structure, punching holes, sowing, attaching the fixing layer, cutting, rolling and packing, and then becomes the product of multi-purpose paper. [0062]

    In order to meet the requirements of functional agricultural paper, in the processes of waste pulp treating and paper manufacturing, at least one functional additive is added, such as Camellia seed cake’s powder, calcium carbonate, dry strength agent, wet strength agent, weed control agent, pest control agent and bacterial control agent. Alternatively, the functional additive can be immersed, sprayed or coated on the paper making machine and the processing equipments to make the best function or effectiveness of the multi-purpose paper in the present invention. [0063]

    When the wet multi-purpose paper is applied for general crop cultivating, the wet strength agent is one of acidic and neutral agents of one of anionic and cationic ones selected from a group consisting of melamine formaldehyde resin, polymeric amine-epichlorohydrin resin, phenolic resin, and glyoxalated polyacrylamide resin. The dry strength agent is one of acidic and neutral agents of one of anionic and cationic ones selected from a group consisting of melamine formaldehyde resin, polymeric amine-epichlorohydrin resin, phenolic resin, glyoxalated polyacrylamide resin, polyacrylamide resin, raw starch, and modified starch. [0064]

    As for weed control agent, it can be chosen from one of inorganic or organic packing materials selected from a group consisting of black carbon, silicon dioxide and titanium dioxide. The pest control component can be selected from sodium dodecyl sulfate (SDS) and linear alkyl sulfate (LAS). The calcium carbonate can be added into the clean paper pulp at a dosage based on classification of the papermaking material, sieving ratio of fibers, desired water-absorbing ability and air permeability of the paper for increasing the physical strength of the paper and promoting the proliferation of microorganisms. Or the Camellia seed cake’s powder is added into the clean paper pulp at 1% by weight for preventing golden apple snails (Pomacea Canaliculata Lamarck) and increasing dispersive level of fibers during manufacturing. [0065]

    In order to understand more about the present invention, the related manufacturing process and data are disclosed to describe the feature and idea of the present invention in the following. [0066]

    In the aspect of manufacturing process, not only the waste paper is fully classified, but also the high purity pulp and the excellent manufacturing equipments are used, wherein the ratio of long fibers and short fibers can be adjusted automatically according to the changeable Canadian Standard Freeness (CSF) of pulp. The using sufficiency of fiber paper strength is fully elevated and the inner fiber structure is improved so that the paper strength is strengthened to the requirements for use in the paddy field without using the chemical agent. In addition, the Wedgewire is used for screening one by one and washing, which can elevate the treating amount under the sieve with small aperture. It might affect the paper strength, remove the substance that is disadvantageous for the manufacturing process and human body health, and cooperate with the 5% high concentration pulp-milling system to elevate the stability of the manufacturing process and basic quality. In the aspect of paper making process, in order not to use the chemical additive, the low boxed concentration is used, the longitudinal/transverse ratio is adjusted, the transverse basic weight is stabilized, the drying temperature is lowered, and the dust keeper of canvas and drying apparatus is mounted to lower the dampness gradient, all to make sure that the paper has the excellent features of paper strength, water-absorbing and air-permeability to meet the requirements of cultivating crops. [0067]

    As in the aspect of quality, in order to enhance functions of weed control and stabilizing the cultivating paper, the corrugated paper layer has a basic weight elevated to range from 90 g/m [0068] 2 to 150 up g/m 2 , and the paper substrate 40 of the multi-purpose paper has a thickness ranged from 0.2 mm to 0.3 mm. In order to let the paper be covered by the paddy field, the water-absorbing ability is elevated to be larger than Cobb, 1 Min, 20 gsm and a wet-rupture strength in longitudinal/transverse direction lower than 1.0 kg/m 2 after 2 hours immersion. In order to transplant the seedling smoothly when planting the non-irrigation crop, the wet-breaking strength in longitudinal/transverse direction is controlled below 1.0 kg/m 2 after 2 hours immersion. For the using of the non-irrigation crop and the need of the crop cultivating, the surface paper larger than 90 g/m 2 is embossed to elevate the air permeability larger than about 50 sec/100 cc. Alternatively, the water-preventing agent is coated on the paper to prevent water permeation, the paper is embossed and becomes the uneven surface structure to elevate the water-permeability, air-permeability of root system, rotting-prevention, and dimension stability in paper size under the condition of dry and wet alternation, to increase the utility in different crops and cultivating styles. In addition, one important characteristic of the multi-purpose paper in the present invention is that the papermaking process doesn’t add any chemical additive, and maintain the PH value close to neutrality, thereby enhancing the activity of microorganisms and the corps planted thereon. To cooperate with the inoculation of antagonistic microorganisms, metal compound contained in the multi-purpose paper must be controlled lower than a specific value according to the following Table 1 (According to Tappi Test Method T 438 cm-96).

    TABLE 1
    Compound Percentage (%)
    Sodium oxide 2.17
    Magnesium oxide 3.43
    Aluminum oxide 29.5
    Silicon oxide 41
    Sulfur trioxide 10.4
    Calcium oxide 12.1
    Titania 1.36
    Copper 0.0027
    Chromium 0.00071
    Nickel 0.0033
    Iron 0.06
    Manganese 0.0026
    Lead 0.01
    Zinc 0.0075
    Mercury ND*
    Arsenic ND
    Total chromium 0.00018

    Please refer to FIG. 1 and FIG. 2, which are diagrams showing the cultivating application and structure of the multipurpose paper according to a preferred embodiment of the present invention. The SDS can be coated or sprayed on the surface of the multi-purpose paper. The spores of high concentration microorganism agent or conidial coating containing natural amylum gel and slowly released organic or chemical fertilizer coating are coated on the side opposite to the SDS coating and the bottom which contacts the soil. In order to allow the SDS coating for preventing golden apple snails, or the microorganism agent coating resisting to low temperature, or Camellia seed cake’s coating to remain on the surface of the paper and be coated thereon smoothly, the moisture contained in the paper can be overdried to a percentage of 5. Thereafter, high concentration microorganism agent, conidial containing additive such as natural amylum gel (10 [0069] 5 per ml) or CaCO3, and 2000 ppm SDS are sprayed on

    Moreover, plural holes are punched on the multi-purpose paper to partly pierce at least one of the fertilizer coating and the uneven surface structure [0070] 41, and inlaying the seed in punched holes to allow the seed to root downwardly upon germation and to guide roots of the plant to grow in a diverging room formed under the uneven surface structure 41. After spraying the adhesive material such as starch or CMC, a fixing layer 60 (such tissue paper or kitchen napkin with a basic weight of 35 g/m 2 ) is covered on the multi-purpose paper to produce the back pressure to help the seeds root downwardly when germination and help the stem stand erect. The cultivating paper here for sowing has the combined functions of weed control, pest control, supplying the required nutrients to plants to help develop the root system, maintaining moisture and breath for the root system. Alternatively, the paper is embossed and made into the uneven surface structure 41 after treated with the microorganism and fertilizer, and then attached on the bottom surface paper 42 which is treated in the same process and has the features of excellent water-preventing and water-permeability. The sprouting seed can have a root system with good breathing and stay between the uneven surface structure 41 and the bottom surface paper 42 to absorb nutrient, exchange air and grow healthily. Nevertheless, the seed is further treated with a chemical seed-treating agent cooperating with the agent such as soda acid, gelatine or polyvinyl alcohol according to the features of the seed and the cultivating method, to protect the germination of the seed, wherein the chemical seed-treating agent is selected from a group consisting of ethylene glycol, propylene glycol, butylenes glycol, polyethylene glycol, polypropylene glycol, polybutylene glycol, glycerine and 2-octyl glycol. The seed can be seeds covered with a paper pulp, seeds covered with a polymer compound, or artificial seeds cultivated from a cell culture.

    A waste cardboard case can be used when cultivating domestically. The inner surface layer of low water-preventiveness can be taken away to maintain the softness of the case and the smooth operation of sowing easily and water-absorbing. The microorganism agent for pest control is coated on the bottom surface paper [0071] 42 and the wooden anti-disease medium 31 is sprayed on the uneven surface structure 41 to produce the short-term non-irrigation crop. When the long-term non-irrigation crop is cultivated, a supporting nylon net 22 with height adjusting ability is mounted on the top of the multi-purpose paper. Alternatively, the plant can be planted on the multi-purpose paper after holes punching or on the plate with the cultivating medium, to achieve the purposes of saving fertilizer, weed control, health and non-polluting.

    According to the above, it is clear that the multi-purpose paper of the present invention has the features of non-polluting, natural decomposing, enhancing the healthy root system with well breathing, and strong light-blocking. The multi-purpose paper can be carriers of agricultural antagonistic microorganisms and serve as the basic functional substrate for weed control, pest control, sowing, growing seedlings, fertilization, fertilizer saving, manpower saving and organic cultivating. The multi-purpose paper can be applied to cultivate crops on the paddy fields and dry farmlands of general or organic farming, such as grains, medicinal herbs, economical plant, vegetables, fruits, and flowers. The multi-purpose paper can replace part of the plastic cultivating plate, reduce the problems of twisted roots and root system aging, make the transplanted plant stronger. The multi-purpose paper can be applied to direct-sowing of organic vegetable cultivating which has less cultivating soil, to save the manpower and prevent weed and pest. In the practical usage, the multi-purpose paper can be rolled up, and cut into a specific shape in use. It can be also directly obtained from a waste cardboard case, and can be used in the large area fields, home gardening, or golf fields. The multi-purpose paper can be applied to the domestic cultivating box containing organic soil or organic medium or the industrial applications with devices of temperature control, cold and hot water pipes, and light control. In addition, all the related materials in the present invention are biodegradable and capable of being composted, which is not limited by the soil environment and enables the achievement of the permanent operation of agricultural production. [0072]

    While the invention has been described in terms of what is presently considered to be the most practical and preferred embodiments, it is to be understood that the invention needs not be limited to the disclosed embodiments. On the contrary, it is intended to cover various modifications and similar arrangements included within the spirit and scope of the appended claims which are to be accorded with the broadest interpretation so as to encompass all such modifications and similar structures. [0073]

    Claims ( 7 )

    (a) providing a papermaking material and obtaining a clean paper pulp by treating said papermaking material;

    (b) adding at least one functional additive into said clean paper pulp to form said multi-purpose paper; and

    (c) processing said multi-purpose paper to form said multi-purpose paper having an uneven surface structure sowing at least a seed thereon, wherein said uneven surface structure is used for placing thereon said seed and forms thereunder a diverging space to help develop the root system of said seed.

    3. The multi-purpose paper according to claim 2 , wherein a surface paper of said uneven surface structure has an air permeability larger than 102 sec/100 cc, breaking force larger than 2 kg/cm 2 , dry pulling force in longitudinal direction larger than 4 kg/15 mm, dry pulling force in transverse direction larger than 105 kg/15 mm, wet pulling force in longitudinal direction larger than 3.5 kg/cm 2 , wet pulling force in transverse direction larger than 1.4 kg/cm 2 , water splash level larger than R3, and gluing degree larger than 120 sec.

    4. The multi-purpose paper according to claim 2 , wherein said multi-purpose paper has a basic air permeability larger than about 50 sec/100 cc, except said surface paper of said uneven surface structure has an air permeability larger than 102 sec/100 cc.

    5. The multi-purpose paper according to claim 2 , wherein said multi-purpose paper can be used in one of growing seedling of shallow crops and an operation system of cultivating and obtaining seedling.

    6. The multi-purpose paper according to claim 2 , wherein at least one seed is covered by one of thin cultivating medium and soil.

    (b) adding at least one functional additive into said papermaking material to form said multi-purpose paper; and

    US10/397,105 2001-10-26 2003-03-28 Multi-purpose paper, manufacturing method thereof and the application thereof Expired – Lifetime US7040054B2 ( en )

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