References
Abreu FOMS, Oliveira EF, Paula HCB, de Paula RCM (2012) Chitosan/cashew gum nanogels for
essential oil encapsulation. Carbohydr Polym 89:1277–1282
Ahemad M, Khan MS (2011) Pesticide interactions with soil microflora: importance in bioremediation. Springer, New York
Barradas TN, Lopes LM, Ricci-Júnior E, De Holanda E, Silva KG, Mansur CR (2013) Development and characterization of micellar systems for application as insect repellents. Int J Pharm
454:633–640
Owens K, Feldman J, Kepner J (2010) Pesticide induced disease database. Pestic You 30:13–21
Chaudhari Q, Castle L (2011) Food applications of nanotechnologies: an overview of opportunities
and challenges for developing countries. Trends Food Sci Tech 22:595–603
Chinnamuthu CR, Boopathi PM (2009) Nanotechnology and agroecosystem. Madras Agric J
96:17–31
Ciancio A, Mukerji KG (eds) (2007) General concepts in integrated pest and disease management
(No. 04; SB611. 5, G4.). Springer, Dordrecht
Corsini E, Sokooti M, Galli CL, Moretto A, Colosio C (2013) Pesticide induced immunotoxicity in
humans: a comprehensive review of the existing evidence. Toxicology 307:123–135
Dollimore L, Schimpf W (2013) Obsolete pesticide stocks—the past 25 years, lessons learned and
observations for the future. Outlooks Pest Manag 24(6):251–256
Ganguli P (2019) Intellectual Property Rights in nano-biopesticides. 1–17
Han X, Balakrishnan VK, Buncel E (2007) Alkaline degradation of the organophosphorus pesticide
fenitrothion as mediated by cationic C12, C14, C16, and C18 surfactants. Langmuir 23
(12):6519–6525
Jafari SM (2017) An overview of nanoencapsulation techniques and their classification. In:
Nanoencapsulation technologies for the food and nutraceutical industries. Academic, San
Diego, p 636
Kah M (2015) Nanopesticides and nanofertilizers: emerging contaminants or opportunities for risk
mitigation? Front Chem 3:1–6
Kah M, Hofmann T (2014) Nanopesticide research: current trends and future priorities. Environ Int
63:224–235
Kalaivani N (2020) Advances in agronanotechnology and future prospects. 85–104
Liu Y, Yan L, Heiden P, Laks P (2001) Use of nanoparticles for controlled release of biocides in
solid wood. J Appl Polym Sci 79:458–465
Liu Y, Laks P, Heiden P (2003) Nanoparticles for the controlled release of fungicides in wood: soil
Jar studies using Gloeophyllum trabeum and Trametes versicolor wood decay fungi.
Holzforschung 57:135–139
Liu F, Wen X, Li Z, Yu W, Sun Y (2006) Porous hollow silica nanoparticles as controlled delivery
system for water-soluble pesticide. Mater Res Bull 41:2268–2275
Nair R, Varghese SH, Nair BG, Maekawa T, Yoshida Y, Kumar DS (2010) Nanoparticulate
material delivery to plants. Plant Sci 179:154–À163
Pan Y, Tikekar RV, Nitin N (2016) Distribution of a model bioactive within solid lipid
nanoparticles and nanostructured lipid carriers influences its loading efficiency and oxidative
stability. Int J Pharm 511:322–330
Rodrigues SM (2017) Nanotechnology for sustainable food production: promising opportunities
and scientific challenges. Environ Sci Nano 4:767–781
Singh N, Karpichev Y, Tiwari AK, Kuca K, Ghosh KK (2015) Oxime functionality in surfactant
self-assembly: an overview on combating toxicity of organophosphates. J Mol Liq 208:237–252
Smith D (1999) Worldwide trends in DDT levels in human breast milk. Int J Epidemiol 28:179–188
Zhao X, Cui H, Wang Y, Sun C, Cui B, Zeng Z (2018) Development strategies and prospects of
nano-based smart pesticide formulation. J Agr Food Chem 66:6504–6512
11 Nanopesticides in Agriculture
251
Abreu FOMS, Oliveira EF, Paula HCB, de Paula RCM (2012) Chitosan/cashew gum nanogels for
essential oil encapsulation. Carbohydr Polym 89:1277–1282
Ahemad M, Khan MS (2011) Pesticide interactions with soil microflora: importance in bioremediation. Springer, New York
Barradas TN, Lopes LM, Ricci-Júnior E, De Holanda E, Silva KG, Mansur CR (2013) Development and characterization of micellar systems for application as insect repellents. Int J Pharm
454:633–640
Owens K, Feldman J, Kepner J (2010) Pesticide induced disease database. Pestic You 30:13–21
Chaudhari Q, Castle L (2011) Food applications of nanotechnologies: an overview of opportunities
and challenges for developing countries. Trends Food Sci Tech 22:595–603
Chinnamuthu CR, Boopathi PM (2009) Nanotechnology and agroecosystem. Madras Agric J
96:17–31
Ciancio A, Mukerji KG (eds) (2007) General concepts in integrated pest and disease management
(No. 04; SB611. 5, G4.). Springer, Dordrecht
Corsini E, Sokooti M, Galli CL, Moretto A, Colosio C (2013) Pesticide induced immunotoxicity in
humans: a comprehensive review of the existing evidence. Toxicology 307:123–135
Dollimore L, Schimpf W (2013) Obsolete pesticide stocks—the past 25 years, lessons learned and
observations for the future. Outlooks Pest Manag 24(6):251–256
Ganguli P (2019) Intellectual Property Rights in nano-biopesticides. 1–17
Han X, Balakrishnan VK, Buncel E (2007) Alkaline degradation of the organophosphorus pesticide
fenitrothion as mediated by cationic C12, C14, C16, and C18 surfactants. Langmuir 23
(12):6519–6525
Jafari SM (2017) An overview of nanoencapsulation techniques and their classification. In:
Nanoencapsulation technologies for the food and nutraceutical industries. Academic, San
Diego, p 636
Kah M (2015) Nanopesticides and nanofertilizers: emerging contaminants or opportunities for risk
mitigation? Front Chem 3:1–6
Kah M, Hofmann T (2014) Nanopesticide research: current trends and future priorities. Environ Int
63:224–235
Kalaivani N (2020) Advances in agronanotechnology and future prospects. 85–104
Liu Y, Yan L, Heiden P, Laks P (2001) Use of nanoparticles for controlled release of biocides in
solid wood. J Appl Polym Sci 79:458–465
Liu Y, Laks P, Heiden P (2003) Nanoparticles for the controlled release of fungicides in wood: soil
Jar studies using Gloeophyllum trabeum and Trametes versicolor wood decay fungi.
Holzforschung 57:135–139
Liu F, Wen X, Li Z, Yu W, Sun Y (2006) Porous hollow silica nanoparticles as controlled delivery
system for water-soluble pesticide. Mater Res Bull 41:2268–2275
Nair R, Varghese SH, Nair BG, Maekawa T, Yoshida Y, Kumar DS (2010) Nanoparticulate
material delivery to plants. Plant Sci 179:154–À163
Pan Y, Tikekar RV, Nitin N (2016) Distribution of a model bioactive within solid lipid
nanoparticles and nanostructured lipid carriers influences its loading efficiency and oxidative
stability. Int J Pharm 511:322–330
Rodrigues SM (2017) Nanotechnology for sustainable food production: promising opportunities
and scientific challenges. Environ Sci Nano 4:767–781
Singh N, Karpichev Y, Tiwari AK, Kuca K, Ghosh KK (2015) Oxime functionality in surfactant
self-assembly: an overview on combating toxicity of organophosphates. J Mol Liq 208:237–252
Smith D (1999) Worldwide trends in DDT levels in human breast milk. Int J Epidemiol 28:179–188
Zhao X, Cui H, Wang Y, Sun C, Cui B, Zeng Z (2018) Development strategies and prospects of
nano-based smart pesticide formulation. J Agr Food Chem 66:6504–6512
11 Nanopesticides in Agriculture
251
