Jeong SH, Hwnag YH, Yi SC (2005) Antibacterial properties of padded PP/PE nonwovens
incorporating nano-sized silver colloids. J Mater Sci 40:5413–5418
Jiang J, Oberdorster G, Biswas P (2009) Characterization of size, surface charge, and agglomeration
state of nanoparticle dispersions for toxicological studies. J Nanopart Res 11:77–89
Jiang LC, Basri M, Omar D, Rahman MBA, Salleh AB, Rahman RNZRA, Salleh AB, Rahman
RNZRA, Selamat A (2012) Green nano-emulsion intervention for water-soluble glyphosate
isopropylamine (IPA) formulations in controlling Eleusine indica (E-indica). Pestic Biochem
Physiol 102:19–29
Jo Y, Kim BH, Jung G (2009) Antifungal activity of silver ions and nanoparticles on phytopathogenic fungi. Plant Dis 93:1037–1043
Kah M, Hofmann T (2014) Nanopesticides research: current trends and future priorities. Environ Int
63:224–235
Kanel S, Greneche J, Choi H (2006) Arsenic(V) removal from groundwater using nano scale zerovalent iron as a colloidal reactive barrier material. Environ Sci Technol 40:2045–2050
Kang Y, Khan S, Ma X (2009) Climate change impacts on crop yield, crop water productivity and
food security – a review. Prog Nat Sci 19:1665–1674
Kang MA, Seo MJ, Hwang IC, Jang C, Park HJ, Yu YM, Youn YN (2012) Insecticidal activity and
feeding behavior of the green peach aphid, Myzus persicae, after treatment with nano types of
pyrifluquinazon. J Asia Pac Entomol 15:533–541
Kanhed P, Birla S, Gaikwad S, Gade A, Seabra AB, Rubilar O, Duran N, Rai M (2014) In vitro
antifungal efficacy of copper nanoparticles against selected crop pathogenic fungi. Mater Lett
115:13–17
Karn B, Kuiken T, Otto M (2009) Nanotechnology and in situ remediation: a review of the benefits
and potential risks. Environ Health Perspect 117:1813–1831
Kasemets K, Ivask A, Dubourguier H, Kahru A (2009) Toxicity of nanoparticles of ZnO, CuO and
TiO 2 to yeast Saccharomyces cerevisiae. Toxicol In Vitro 23:1116–1121
Kasprowicz MJ, Kozioł M, Gorczyca A (2010) The effect of silver nanoparticles on phytopathogenic spores of Fusarium culmorum. Can J Microbiol 56:247–253
Kasprowicz MJ, Gorczyca A, Frandsen RJN (2013) The effect of nanosilver on pigments production by Fusarium culmorum (W. G. Sm.) Sacc. Pol J Microbiol 62:365–372
Katti DR, Sharma A, Pradham SM, Katti KS (2015) Carbon nanotube proximity influences rice
DNA. Chem Phys 455:17–22
Kaushal M, Wani SP (2017) Nanosensors: frontiers in precision agriculture. In: Prasad R,
Kumar M, Kumar V (eds) Nanotechnology. Springer, Singapore
Kaveh R, Li YS, Ranjbar S, Tehrani R, Brueck CL, Van Aken B (2013) Changes in Arabidopsis
thaliana gene expression in response to silver nanoparticles and silver ions. Environ Sci Technol
47:10637–10644
Khot LR, Sankarana S, Majaa JM, Ehsania R, Schuster EW (2012) Applications of nanomaterials in
agricultural production and crop protection: a review. Crop Prot 35:64–70
Kim S, Ryu DY (2013) Silver nanoparticle-induced oxidative stress, genotoxicity and apoptosis in
cultured cells and animal tissues. J Appl Toxicol 33:78–89
Kim DY, Kadam A, Shinde S, Saratale RG, Patra J, Ghodake G (2018) Recent developments in
nanotechnology transforming the agricultural sector: a transition replete with opportunities. J
Sci Food Agric 98:849–864
Klaine SJ, Alvarez PJ, Batley GE, Fernandes TF, Handy RD, Lyon DY, Mahendra S, McLaughlin
MJ, Lead JR (2008) Nanomaterials in the environment: behavior, fate, bioavailability, and
effects. Environ Toxicol Chem 27:1825–1851
Kookana RS, Boxall ABA, Reeves PT, Ashauer R, Beulke S, Chaudhry Q, Corneslis G, Fernandes
TF, Gan J, Kah M, Lynch I, Ranville J, Sinclair C, Spurgeon D, Tiede K, Brink PJV (2014)
Nanopesticides: guiding principles for regulatory evaluation of environmental risks. J Agric
Food Chem 62:4227–4240
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