Recent advances in nanotechnology for the improvement of conventional agricultural systems: A Review
暂无分享,去创建一个
[1] B. R. Gurjar,et al. Nanotechnology for agricultural applications: Facts, issues, knowledge gaps, and challenges in environmental risk assessment , 2022, Journal of Environmental Management.
[2] Kuldeep Singh,et al. Engineered zinc oxide nanoparticles: an alternative to conventional zinc sulphate in neutral and alkaline soils for sustainable wheat production , 2021, 3 Biotech.
[3] Sanchita,et al. Antimicrobial potential of silver nanoparticles biosynthesized using aerial yam bulbils for control of selected phytopathogens , 2021, Archives of Phytopathology and Plant Protection.
[4] S. Ahmad,et al. Combined use of different nanoparticles effectively decreased cadmium (Cd) concentration in grains of wheat grown in a field contaminated with Cd. , 2021, Ecotoxicology and environmental safety.
[5] A. Roychoudhury,et al. Go green to protect plants: repurposing the antimicrobial activity of biosynthesized silver nanoparticles to combat phytopathogens , 2021, Nanotechnology for Environmental Engineering.
[6] N. Ghosh,et al. Green Synthesis of Antimicrobial Silver Nanoparticles using Fruit Extract of Glycosmis Pentaphylla and its Theoretical Explanations. , 2021 .
[7] S. Schillberg,et al. Plant molecular farming for the production of valuable proteins - Critical evaluation of achievements and future challenges. , 2021, Journal of plant physiology.
[8] G. Kaur,et al. Nanoparticle-Based Sustainable Agriculture and Food Science: Recent Advances and Future Outlook , 2020, Frontiers in Nanotechnology.
[9] Chengjun Li,et al. Opportunities and challenges of phyto-nanotechnology , 2020 .
[10] Ram L. Ray,et al. Applications of Remote Sensing in Precision Agriculture: A Review , 2020, Remote. Sens..
[11] Mona M. Soliman,et al. Rapid green synthesis of silver nanoparticles from blue gum augment growth and performance of maize, fenugreek, and onion by modulating plants cellular antioxidant machinery and genes expression , 2020, Acta Physiologiae Plantarum.
[12] R. Meena,et al. Green synthesis of nanoparticles using plant extracts: a review , 2020, Environmental Chemistry Letters.
[13] Arun Kumar,et al. Eco-Friendly Greener Synthesis of Nanoparticles , 2020, Advanced pharmaceutical bulletin.
[14] H. Feng,et al. Foliar Application of Low Concentrations of Titanium Dioxide and Zinc Oxide Nanoparticles to the Common Sunflower under Field Conditions , 2020, Nanomaterials.
[15] Q. Wei,et al. Agricultural nanodiagnostics for plant diseases: recent advances and challenges , 2020, Nanoscale advances.
[16] Leanne M. Gilbertson,et al. Technology readiness and overcoming barriers to sustainably implement nanotechnology-enabled plant agriculture , 2020, Nature Food.
[17] Leanne M. Gilbertson,et al. Guiding the design space for nanotechnology to advance sustainable crop production , 2020, Nature Nanotechnology.
[18] Vijay P. Singh,et al. Progress and challenges in the detection of residual pesticides using nanotechnology based colorimetric techniques , 2020, Trends in Environmental Analytical Chemistry.
[19] A. Nandi,et al. Effects of Nano Fertilizer on Yield, Yield Attributes and Economics in Tomato (Solanum lycopersicum L.) , 2020 .
[20] L. Fraceto,et al. Green nanomaterials fostering agrifood sustainability , 2020, TrAC Trends in Analytical Chemistry.
[21] A. Nawaz,et al. Nanotechnology in agriculture: Current status, challenges and future opportunities. , 2020, The Science of the total environment.
[22] Francisco Rovira-Más,et al. From Smart Farming towards Agriculture 5.0: A Review on Crop Data Management , 2020, Agronomy.
[23] Chen Chen,et al. Optical biosensors: an exhaustive and comprehensive review. , 2020, The Analyst.
[24] K. Arora,et al. Trends in nano-inspired biosensors for plants , 2020 .
[25] Eman S. Hagag,et al. Green production of silver nanoparticles, evaluation of their nematicidal activity against Meloidogyne javanica and their impact on growth of faba bean , 2019, Beni-Suef University Journal of Basic and Applied Sciences.
[26] A. Walter,et al. Precision Farming at the Nexus of Agricultural Production and the Environment , 2019, Annual Review of Resource Economics.
[27] A. Sundramoorthy,et al. Electrochemical biosensor for methyl parathion based on single-walled carbon nanotube/glutaraldehyde crosslinked acetylcholinesterase-wrapped bovine serum albumin nanocomposites. , 2019, Analytica chimica acta.
[28] M. C. Câmara,et al. Development of stimuli-responsive nano-based pesticides: emerging opportunities for agriculture , 2019, Journal of Nanobiotechnology.
[29] A. Mattoo,et al. Sustainable Crop Production Systems and Human Nutrition , 2019, Front. Sustain. Food Syst..
[30] G. Palleschi,et al. An eco-designed paper-based algal biosensor for nanoformulated herbicide optical detection. , 2019, Journal of hazardous materials.
[31] Jie Zhou,et al. Applications of Nanotechnology in Plant Growth and Crop Protection: A Review , 2019, Molecules.
[32] Juan Pablo Giraldo,et al. Nanobiotechnology approaches for engineering smart plant sensors , 2019, Nature Nanotechnology.
[33] Leanne M. Gilbertson,et al. Opportunities and challenges for nanotechnology in the agri-tech revolution , 2019, Nature Nanotechnology.
[34] L. Cheong,et al. Direct, selective and ultrasensitive electrochemical biosensing of methyl parathion in vegetables using Burkholderia cepacia lipase@MOF nanofibers-based biosensor. , 2019, Talanta.
[35] A. Bagheri,et al. Localized surface plasmon resonance biosensing of tomato yellow leaf curl virus. , 2019, Journal of virological methods.
[36] M. Ghorbanpour,et al. Application of silicon nanoparticles in agriculture , 2019, 3 Biotech.
[37] D. Moscone,et al. Origami multiple paper-based electrochemical biosensors for pesticide detection. , 2019, Biosensors & bioelectronics.
[38] K. Chandrika,et al. Bacillus thuringiensis-based nanopesticides for crop protection , 2019, Nano-Biopesticides Today and Future Perspectives.
[39] Amna,et al. Weed Control Through Herbicide-Loaded Nanoparticles , 2019, Nanomaterials and Plant Potential.
[40] Marie Simonin,et al. Negative Effects of Copper Oxide Nanoparticles on Carbon and Nitrogen Cycle Microbial Activities in Contrasting Agricultural Soils and in Presence of Plants , 2018, Front. Microbiol..
[41] Radha Prasanna,et al. Prospecting the interactions of nanoparticles with beneficial microorganisms for developing green technologies for agriculture , 2018, Environmental Nanotechnology, Monitoring & Management.
[42] P. Nath,et al. Gold-coated electrospun PVA nanofibers as SERS substrate for detection of pesticides , 2018, Sensors and Actuators B: Chemical.
[43] Yuhong Zheng,et al. Enhanced electrochemical voltammetric fingerprints for plant taxonomic sensing. , 2018, Biosensors & bioelectronics.
[44] R. Mesnage,et al. Editorial: Toxicity of Pesticides on Health and Environment , 2018, Front. Public Health.
[45] A. Majeed,et al. Plant growth promoting bacteria: role in soil improvement, abiotic and biotic stress management of crops , 2018, Plant Cell Reports.
[46] Roger L. Chang,et al. High aspect ratio nanomaterials enable delivery of functional genetic material without DNA integration in mature plants , 2017, bioRxiv.
[47] G. Pandey. Challenges and future prospects of agri-nanotechnology for sustainable agriculture in India , 2018 .
[48] Ruibing Wang,et al. A user-friendly herbicide derived from photo-responsive supramolecular vesicles , 2018, Nature Communications.
[49] M. Kowshik,et al. Recent Developments on Nanotechnology in Agriculture: Plant Mineral Nutrition, Health, and Interactions with Soil Microflora. , 2018, Journal of agricultural and food chemistry.
[50] C. Banks,et al. Non-enzymatic electrochemical platform for parathion pesticide sensing based on nanometer-sized nickel oxide modified screen-printed electrodes. , 2018, Food chemistry.
[51] P. Zarco-Tejada,et al. Previsual symptoms of Xylella fastidiosa infection revealed in spectral plant-trait alterations , 2018, Nature Plants.
[52] R. Kookana,et al. A critical evaluation of nanopesticides and nanofertilizers against their conventional analogues , 2018, Nature Nanotechnology.
[53] Alexander M. Jones,et al. Genetically Encoded Biosensors in Plants: Pathways to Discovery. , 2018, Annual review of plant biology.
[54] Xuan Weng,et al. Biosensors for Sustainable Food Engineering: Challenges and Perspectives , 2018, Biosensors.
[55] Kuldeep Mahato,et al. Fundamentals and commercial aspects of nanobiosensors in point-of-care clinical diagnostics , 2018, 3 Biotech.
[56] Hui-Fang Cui,et al. A highly stable acetylcholinesterase biosensor based on chitosan-TiO2-graphene nanocomposites for detection of organophosphate pesticides. , 2018, Biosensors & bioelectronics.
[57] A. Chwalibog,et al. Influence of silver nanoparticles on growth and health of broiler chickens after infection with Campylobacter jejuni , 2018, BMC Veterinary Research.
[58] P. Bindraban,et al. Nanofertilizers: New Products for the Industry? , 2017, Journal of agricultural and food chemistry.
[59] A. Mattoo,et al. Sustainable Agriculture—Enhancing Environmental Benefits, Food Nutritional Quality and Building Crop Resilience to Abiotic and Biotic Stresses , 2018 .
[60] Yanjun Jiang,et al. Acetylcholinesterase/chitosan-transition metal carbides nanocomposites-based biosensor for the organophosphate pesticides detection , 2017 .
[61] G. Han,et al. Acetylcholinesterase biosensor based on electrochemically inducing 3D graphene oxide network/multi-walled carbon nanotube composites for detection of pesticides , 2017 .
[62] D. Beezhold,et al. Nanotechnology in agriculture: Opportunities, toxicological implications, and occupational risks. , 2017, Toxicology and applied pharmacology.
[63] D. Kim,et al. Nanomaterials in plant tissue culture: the disclosed and undisclosed , 2017 .
[64] R. Prasad,et al. Nanotechnology in Sustainable Agriculture: Recent Developments, Challenges, and Perspectives , 2017, Front. Microbiol..
[65] N. Dasgupta,et al. Applications of nanotechnology in agriculture and water quality management , 2017, Environmental Chemistry Letters.
[66] Naresh Kumar,et al. Nanotechnology: The new perspective in precision agriculture , 2017, Biotechnology reports.
[67] K. Giller,et al. Precision farming for increased land and labour productivity in semi-arid West Africa. A review , 2017, Agronomy for Sustainable Development.
[68] M. Kassaee,et al. Effects of nano Fe/SiO2 fertilizers on germination and growth of barley and maize , 2017 .
[69] David M. Cwiertny,et al. Occurrence of Neonicotinoid Insecticides in Finished Drinking Water and Fate during Drinking Water Treatment , 2017 .
[70] N. Tufenkji,et al. Assessing the transport potential of polymeric nanocapsules developed for crop protection. , 2017, Water research.
[71] Volodymyr B. Koman,et al. Nitroaromatic detection and infrared communication from wild-type plants using plant nanobionics. , 2017, Nature materials.
[72] S. Yao,et al. Glutathione regulation-based dual-functional upconversion sensing-platform for acetylcholinesterase activity and cadmium ions. , 2017, Biosensors & bioelectronics.
[73] M. Ghorbanpour,et al. Plant Nanobionics a Novel Approach to Overcome the Environmental Challenges , 2017 .
[74] Author. The Emerging Nano-Corporate Paradigm : Nanotechnology and the Transformation of Nature , Food and Agri-Food Systems , 2017 .
[75] N. Sabaghnia,et al. Nano-iron fertilizer effects on some plant traits of dragonhead (Dracocephalum moldavica L.) under different sowing densities , 2016 .
[76] Joon Ching Juan,et al. Production of new cellulose nanomaterial from red algae marine biomass Gelidium elegans. , 2016, Carbohydrate polymers.
[77] C. Patil,et al. Trypsin inactivation by latex fabricated gold nanoparticles: A new strategy towards insect control. , 2016, Enzyme and microbial technology.
[78] Chin Wei Cheah,et al. Ferroelectric KNbO3 nanofibers: synthesis, characterization and their application as a humidity nanosensor , 2016, Nanotechnology.
[79] Sandra M. Schmöckel,et al. Salinity tolerance loci revealed in rice using high-throughput non-invasive phenotyping , 2016, Nature Communications.
[80] Iman Katouzian,et al. Nano-encapsulation as a promising approach for targeted delivery and controlled release of vitamins , 2016 .
[81] Fayuan Wang,et al. Heavy Metal Accumulation in Different Rice Cultivars as Influenced by Foliar Application of Nano-silicon , 2016, Water, Air, & Soil Pollution.
[82] Xiaoli Li,et al. Hyperspectral Imaging for Determining Pigment Contents in Cucumber Leaves in Response to Angular Leaf Spot Disease , 2016, Scientific Reports.
[83] Zhiyun Zhang,et al. Alteration of the Nonsystemic Behavior of the Pesticide Ferbam on Tea Leaves by Engineered Gold Nanoparticles. , 2016, Environmental science & technology.
[84] M. Janmohammadi,et al. Effect of nano-silicon foliar application on safflower growth under organic and inorganic fertilizer regimes , 2016 .
[85] S. Ito,et al. Magnesium oxide nanoparticles induce systemic resistance in tomato against bacterial wilt disease , 2016 .
[86] A. Ditta,et al. Applications and perspectives of using nanomaterials for sustainable plant nutrition , 2016 .
[87] R. Koide,et al. Effects of ditch-buried straw return on water percolation, nitrogen leaching and crop yields in a rice-wheat rotation system. , 2016, Journal of the science of food and agriculture.
[88] Brendan Jennings,et al. Dynamic channel allocation in electromagnetic nanonetworks for high resolution monitoring of plants , 2016, Nano Commun. Networks.
[89] Gaanty Pragas Maniam,et al. Biosynthesis of metallic nanoparticles using plant derivatives and their new avenues in pharmacological applications – An updated report , 2014, Saudi pharmaceutical journal : SPJ : the official publication of the Saudi Pharmaceutical Society.
[90] Joydeep Banerjee,et al. Plant Nanotechnology: An Overview on Concepts, Strategies, and Tools , 2016 .
[91] Rajesh Kumar,et al. Prediction and validation of gold nanoparticles (GNPs) on plant growth promoting rhizobacteria (PGPR): a step toward development of nano-biofertilizers , 2015 .
[92] N. Kaur,et al. Acetylcholinesterase immobilised eggshell membrane-based optical biosensor for organophosphate detection , 2015 .
[93] Mauro Vigani,et al. Agricultural nanotechnologies: What are the current possibilities? , 2015 .
[94] L. Fraceto,et al. Solid lipid nanoparticles co-loaded with simazine and atrazine: preparation, characterization, and evaluation of herbicidal activity. , 2015, Journal of agricultural and food chemistry.
[95] E. Marsili,et al. Fungal biosynthesis of gold nanoparticles: mechanism and scale up , 2014, Microbial biotechnology.
[96] Fayuan Wang,et al. Foliar application with nano-silicon alleviates Cd toxicity in rice seedlings , 2015, Environmental Science and Pollution Research.
[97] Qin Zhang,et al. A Review of Imaging Techniques for Plant Phenotyping , 2014, Sensors.
[98] J. Xie,et al. Functionalized graphene oxide for the fabrication of paraoxon biosensors. , 2014, Analytica chimica acta.
[99] Muhammad Ali,et al. Nanotechnology: A new frontier in Agriculture , 2014 .
[100] B. S. Sekhon. Nanotechnology in agri-food production: an overview , 2014, Nanotechnology, science and applications.
[101] Abdullah Mohamed Asiri,et al. Acetylcholinesterase biosensor based on a gold nanoparticle-polypyrrole-reduced graphene oxide nanocomposite modified electrode for the amperometric detection of organophosphorus pesticides. , 2014, The Analyst.
[102] N. Taran,et al. Phytotoxicity of colloidal solutions of metal-containing nanoparticles , 2014, Cytology and Genetics.
[103] Ardemis A. Boghossian,et al. Plant nanobionics approach to augment photosynthesis and biochemical sensing. , 2014, Nature materials.
[104] N. Farrokhi,et al. Some Physiological Responses of Black-Eyed Pea to Iron and Magnesium Nanofertilizers , 2014 .
[105] M. H. Siddiqui,et al. Role of nano-SiO2 in germination of tomato (Lycopersicum esculentum seeds Mill.). , 2014, Saudi journal of biological sciences.
[106] Shikha Sharma,et al. Nanoscience and Nanotechnology: Cracking Prodigal Farming , 2013 .
[107] Insook Lee,et al. The Genotoxic Effect of ZnO and CuO Nanoparticles on Early Growth of Buckwheat, Fagopyrum Esculentum , 2013, Water, Air, & Soil Pollution.
[108] M. Liess,et al. Pesticides reduce regional biodiversity of stream invertebrates , 2013, Proceedings of the National Academy of Sciences.
[109] G. Annadurai,et al. Eco-friendly synthesis and characterization of gold nanoparticles using Klebsiella pneumoniae , 2013, Journal of Nanostructure in Chemistry.
[110] A. Ditta. How helpful is nanotechnology in agriculture? , 2012 .
[111] J. White,et al. Toxicity of silver and copper to Cucurbita pepo: Differential effects of nano and bulk‐size particles , 2012, Environmental toxicology.
[112] Sefali Acharya,et al. Implications of Nanobiosensors in Agriculture , 2012 .
[113] Xingyu Jiang,et al. A highly sensitive, dual-readout assay based on gold nanoparticles for organophosphorus and carbamate pesticides. , 2012, Analytical chemistry.
[114] J. White,et al. Accumulation and Phytotoxicity of Engineered Nanoparticles to Cucurbita Pepo , 2012, International journal of phytoremediation.
[115] D. Atha,et al. Copper oxide nanoparticle mediated DNA damage in terrestrial plant models. , 2012, Environmental science & technology.
[116] Sunghyun Kim,et al. Alteration of Phytotoxicity and Oxidant Stress Potential by Metal Oxide Nanoparticles in Cucumis sativus , 2012, Water, Air, & Soil Pollution.
[117] M. Basri,et al. Green nano-emulsion intervention for water-soluble glyphosate isopropylamine (IPA) formulations in controlling Eleusine indica (E. indica) , 2012 .
[118] Patricia M. Kristjanson,et al. Options for support to agriculture and food security under climate change , 2012 .
[119] Rickey Y. Yada,et al. Nanotechnologies in agriculture: New tools for sustainable development , 2011 .
[120] A. E. Ermakov,et al. Effects of copper(II) ions and copper oxide nanoparticles on Elodea densa Planch. , 2011, Russian Journal of Ecology.
[121] V. Karunaratne,et al. A green slow-release fertilizer composition based on urea-modified hydroxyapatite nanoparticles encapsulated wood , 2011 .
[122] J. Strassmann,et al. Primitive agriculture in a social amoeba , 2011, Nature.
[123] Siavash Iravani,et al. Green synthesis of metal nanoparticles using plants , 2011 .
[124] Arunava Goswami,et al. Novel applications of solid and liquid formulations of nanoparticles against insect pests and pathogens , 2010 .
[125] D Marshall Porterfield,et al. Non-invasive quantification of endogenous root auxin transport using an integrated flux microsensor technique. , 2010, The Plant journal : for cell and molecular biology.
[126] A. Bhaumik,et al. Nano-particles - A recent approach to insect pest control , 2010 .
[127] Raj Singh,et al. Effect of weather parameters on karnal bunt disease in wheat in Karnal region of Haryana , 2010, Journal of Agrometeorology.
[128] Micaela Buteler,et al. Novel use of nanostructured alumina as an insecticide. , 2010, Pest management science.
[129] Dorothy Farrell,et al. Recent advances from the National Cancer Institute Alliance for Nanotechnology in Cancer. , 2010, ACS nano.
[130] Jun-yan Huang,et al. Electrocatalytic oxidation of phytohormone salicylic acid at copper nanoparticles-modified gold electrode and its detection in oilseed rape infected with fungal pathogen Sclerotinia sclerotiorum. , 2010, Talanta.
[131] J. Famiglietti,et al. Satellite-based estimates of groundwater depletion in India , 2009, Nature.
[132] J. Qureshi,et al. Exclusion techniques reveal significant biotic mortality suffered by Asian citrus psyllid Diaphorina citri (Hemiptera: Psyllidae) populations in Florida citrus , 2009 .
[133] Barbara Karn,et al. Nanotechnology and in Situ Remediation: A Review of the Benefits and Potential Risks , 2009, Environmental health perspectives.
[134] Xiaoyi Li,et al. Carbon nanotube based artificial water channel protein: membrane perturbation and water transportation. , 2009, Nano letters.
[135] C. R. Chinnamuthu,et al. Nanotechnology and agroecosystem. , 2009 .
[136] R. Rosenberg,et al. Spreading Dead Zones and Consequences for Marine Ecosystems , 2008, Science.
[137] Lan Wu,et al. Preparation and properties of chitosan-coated NPK compound fertilizer with controlled-release and water-retention , 2008 .
[138] T. K. Barik,et al. Nanosilica—from medicine to pest control , 2008, Parasitology Research.
[139] D. Sparks,et al. Nanominerals, Mineral Nanoparticles, and Earth Systems , 2008, Science.
[140] H. Boparai,et al. Remediation of Atrazine-contaminated Soil and Water by Nano Zerovalent Iron , 2008 .
[141] Gaoyong Zhang,et al. Oil-in-water nanoemulsions for pesticide formulations. , 2007, Journal of colloid and interface science.
[142] Jiale Huang,et al. Biosynthesis of silver and gold nanoparticles by novel sundried Cinnamomum camphora leaf , 2007 .
[143] Chao Liu,et al. Effect of nano-TiO2 on strength of naturally aged seeds and growth of spinach , 2005, Biological Trace Element Research.
[144] S. H. Kim,et al. A New Composition of Nanosized Silica-Silver for Control of Various Plant Diseases , 2006 .
[145] Naoki Yamaji,et al. Silicon uptake and accumulation in higher plants. , 2006, Trends in plant science.
[146] M. Aino,et al. Suppressive effect of liquid potassium silicate on powdery mildew of strawberry in soil , 2006, Journal of General Plant Pathology.
[147] J. Banfield,et al. Nanoparticulate Iron Oxide Minerals in Soils and Sediments: Unique Properties and Contaminant Scavenging Mechanisms , 2005 .
[148] Dan Luo,et al. Multiplexed detection of pathogen DNA with DNA-based fluorescence nanobarcodes , 2005, Nature Biotechnology.
[149] N. Scott,et al. Nanotechnology and animal health. , 2005, Revue scientifique et technique.
[150] Claude Cohen,et al. Engineered polymeric nanoparticles for bioremediation of hydrophobic contaminants. , 2005, Environmental science & technology.
[151] M. E. Kaoutit,et al. A Simple Conducting Polymer‐Based Biosensor for the Detection of Atrazine , 2004 .
[152] K. Yasuda. Biotechnology approach to determination of genetic and epigenetic control in cells , 2004, Journal of nanobiotechnology.
[153] Gabriel A Silva,et al. Introduction to nanotechnology and its applications to medicine. , 2004, Surgical neurology.
[154] G. Whitesides. The 'right' size in nanobiotechnology , 2003, Nature Biotechnology.
[155] N. Seeman. DNA in a material world , 2003, Nature.
[156] C. Zhang,et al. RESEARCH OF THE EFFECT OF NANOMETER MATERIALS ON GERMINATION AND GROWTH ENHANCEMENT OF GLYCINE MAX AND ITS MECHANISM , 2002 .
[157] Peter H. Gleick,et al. The World’s Water: The Biennial Report on Freshwater Resources , 2014 .
[158] P. B. Barton,et al. Fluid-Mineral Equilibria in Hydrothermal Systems , 1984 .