an overview of principles and criteria of fundamental processes.
Sustainability 7:2189–2212. https://doi.org/10.3390/su7022189
Du W, Tan W, Peralta-Videa JR, Gardea-Torresdey JL, Ji R, Yin Y
et al (2017) Interaction of metal oxide nanoparticles with higher
terrestrial plants: physiological and biochemical aspects. Plant
Physiol Biochem 110:210–225. https://doi.org/10.1016/j.plaphy.
2016.04.024
El Beyrouthya M, El Azzi D (2014) Nanotechnologies: novel solutions
for sustainable agriculture. Adv Crop Sci Technol 2:e118. https://
doi.org/10.4172/2329-8863.1000e118
Fierer N, Jackson RB (2006) The diversity and biogeography of soil
bacterial communities. PNAS 103(3):626–631
Fincheira P, Tortella G, Duran N, Seabra AB, Rubilar O (2020) Current
applications of nanotechnology to develop plant growth inducer
agents as an innovation strategy. Crit Rev Biotechnol 40(1):15–30
Floros JD, Newsome R, Fisher W, Barbosa-Cánovas GV, Chen H,
Dunne CP et al (2010) Feeding the world today and tomorrow: the
importance of food science and technology. Compr Rev Food Sci
Food Saf 9:572–599. https://doi.org/10.1111/j.1541-4337.2010.
00127.x
Fogel R, Limson J (2016) Developing biosensors in developing
countries: South Africa as a case study. Biosensors 6:5. https://doi.
org/10.3390/bios6010005
Fraceto LF, Grillo R, de Medeiros GA, Scognamiglio V, Rea G,
Bartolucci C (2016) Nanotechnology in agriculture: which innovation potential does it have? Front Environ Sci 4:20. https://doi.org/
10.3389/fenvs.2016.00020
Frenk S, Ben-Moshe T, Dror I, Berkowitz B, Minz D (2013) Effect of
metal oxide nanoparticles on microbial community structure and
function in two different soil types. PLoS ONE 8:84441
Ghaani M, Cozzolino CA, Castelli G, Farris S (2016) An overview of
the intelligent packaging technologies in the food sector. Trends
Food Sci Tech 51:1–11. https://doi.org/10.1016/j.tifs.2016.02.008
Ghormade V, Deshpande MV, Paknikar KM (2011)Perspectives for
nano-biotechnology enabled protection and nutrition of plants.
Biotech Adv 29(6):792–803
Gibney E (2015) Buckyballs in space solve 100-year-old riddle. Nat
News. https://doi.org/10.1038/nature.2015.17987
GrilloR APC, Fraceto LF (2016) Nanotechnology applied to
bio-encapsulation of pesticides. J Nanosci Nanotechnol 16:1231–
1234. https://doi.org/10.1016/j.tifs.2003.10.005
Gruère GP (2012) Implications of nanotechnology growth in food and
agriculture in OECD countries. Food Policy 37:191–198. https://
doi.org/10.1016/j.jhazmat.2014.05.079
Guo J, Chi J (2014) Effect of Cd-tolerant plant growth-promoting
rhizobium on plant growth and Cd uptake by Loliummultiflorum
Lam. and Glycinemax (L.) Merr.in Cd-contaminated soil. Plant Soil
375:205–214. https://doi.org/10.1007/s11104-013-1952-1
Hajirostamlo B, Mirsaeedghazi N, Arefnia M, Shariati MA, Fard EA
(2015) The role of research and development in agriculture and its
dependent concepts in agriculture. Asian J Appl Sci Eng 4:79–81.
https://doi.org/10.1016/j.cocis.2008.01.005
Helar G, Chavan A (2015) Synthesis, characterization and stability of
gold nanoparticles using the fungus Fusarium oxysporum and its
impact on seed. Int J Recent Sci Res 6:3181–3318
Hoffmann M, Holtze EM, Wiesner MR (2007) Reactive oxygen species
generation on nanoparticulate material. In: Wiesner MR, Bottero JY
(eds) Environmental nanotechnology. Applications and impacts of
nanomaterials. McGraw Hill, New York, pp 155–203
Hossain K, Abbas SZ, Ahmad A, Rafatullah M, Ismail N, Pant G,
Avasn M (2020) Nanotechnology: a boost for the urgently needed
second green revolution in Indian agriculture. In: Nanobiotechnology in agriculture. Springer, Cham, pp 15–33
Hu Y, Li J, Ma L, PengQ FW, Zhang L et al (2010) High efficiency
transport of quantum dots into plant roots with the aid of silwet
L-77. Plant Physiol Biochem 48:703–709. https://doi.org/10.1016/j.
plaphy.2010.04.001
Ion AC, Ion I, Culetu A (2010) Carbon-based nanomaterials: environmental applications. Univ Politehn Bucharest 38:129–132
Jiling C, Youzhi F, Xiangui L, Junhua W (2016) Arbuscular
mycorrhizal fungi alleviate the negative effects of iron oxide
nanoparticles on bacterial community in rhizospheric soils. Front
Environ Sci 4:10
Josko I, Oleszczuk P, Futa B (2014) The effect of inorganic
nanoparticles (ZnO, Cr 2 O 3 , CuO and Ni) and their bulk counterparts
on enzyme activities in different soils. Geoderma 232:528–537
Kah M (2015) Nanopesticides and nanofertilizers: emerging contaminants or opportunities for risk mitigation? Front Chem 3:64. https://
doi.org/10.3389/fchem.2015.00064
Kandasamy S, Prema RS (2015) Methods of synthesis of nano particles
and its applications. J Chem Pharm Res 7:278–285
Khan MN, Mobin M, Abbas ZK, AlMutairi KA, Siddiqui ZH (2017)
Role of nanomaterials in plants under challenging environments.
Plant Physiol Biochem 110:194–209. https://doi.org/10.1016/j.
plaphy.2016.05.038
Khan MR, Akram M (2020) Nanoparticles and their fate in soil
ecosystem. In: Biogenic nano-particles and their use in
agro-ecosystems. Springer, Singapore, pp 221–245
Khan ST (2020) Interaction of engineered nanomaterials with soil
microbiome and plants: their impact on plant and soil health. In:
Hayat S, Pichtel J, Faizan M, Fariduddin Q (eds) Sustainable
agriculture reviews, vol 41. Springer, Cham
Khiew P, Chiu W, Tan T, Radiman S, Abd-Shukor R, Chia CH (2011)
Capping effect of palm-oil based organometallic ligand towards the
production of highly monodispersed nanostructured material. In:
Palm oil: nutrition, uses and impacts, pp 189–219, Nova Science
Khin MM, NairAS BVJ, Murugan R, Ramakrishna S (2012) A review
on nanomaterials for environmental remediation. Energy Environ
Sci 5:8075–8109. https://doi.org/10.1039/c2ee21818f
Khond VW, Kriplani VM (2016) Effect of nanofluid additives on
performances and emissions of emulsified diesel and biodiesel
fueled stationary CI engine: a comprehensive review. Renew
Sustain Energy Rev 59:1338–1348. https://doi.org/10.1016/j.rser.
2016.01.051
Khot LR, Sankaran S, Maja JM, Ehsani R, Schuster EW (2012)
Applications of nanomaterials in agricultural production and crop
protection: a review. Crop Prot 35:64–70. https://doi.org/10.1016/j.
cropro.2012.01.007
Kookana RS, Boxall AB, Reeves PT, Ashauer R, Beulke S,
Chaudhry Q et al (2014) Nanopesticides: guiding principles for
regulatory evaluation of environmental risks. J Agric Food Chem
62:4227–4240. https://doi.org/10.1021/jf500232f
Kumar N, Shah V, Walker VK (2012) Influence of a nanoparticle
mixture on an arctic soil community. Environ Toxicol Chem
31:131–135
Lambreva MD, Lavecchia T, Tyystjärvi E, Antal TK, Orlanducci S,
Margonelli A et al (2015) Potential of carbon nanotubes in algal
biotechnology. Photosyn Res 125:451–471. https://doi.org/10.1007/
s11120-015-0168-z
Liu RQ, Lal R (2015) Potentials of engineered nanoparticles as
fertilizers for increasing agronomic productions. Sci Total Environ
514:131–139. https://doi.org/10.1016/j.scitotenv.2015.01.104
Liu Y, He L, Mustapha A, Li H, Hu ZQ, Lin M (2009) Antibacterial
activities of zinc oxide nanoparticles against Escherichia coli O157:
H7. J Appl Microbiol 107:1193–1201. https://doi.org/10.1111/j.
1365-2672.2009.04303.x
Ma X, Geiser-Lee J, Deng Y, Kolmakov A (2010) Interactions between
engineered nanoparticles (ENPs) and plants: phytotoxicity, uptake
and accumulation. Sci Total Environ 408:3053–3061. https://doi.
org/10.1016/j.scitotenv.2010.03.031
Engineered Nanoparticles in Smart Agricultural Revolution …
15
Sustainability 7:2189–2212. https://doi.org/10.3390/su7022189
Du W, Tan W, Peralta-Videa JR, Gardea-Torresdey JL, Ji R, Yin Y
et al (2017) Interaction of metal oxide nanoparticles with higher
terrestrial plants: physiological and biochemical aspects. Plant
Physiol Biochem 110:210–225. https://doi.org/10.1016/j.plaphy.
2016.04.024
El Beyrouthya M, El Azzi D (2014) Nanotechnologies: novel solutions
for sustainable agriculture. Adv Crop Sci Technol 2:e118. https://
doi.org/10.4172/2329-8863.1000e118
Fierer N, Jackson RB (2006) The diversity and biogeography of soil
bacterial communities. PNAS 103(3):626–631
Fincheira P, Tortella G, Duran N, Seabra AB, Rubilar O (2020) Current
applications of nanotechnology to develop plant growth inducer
agents as an innovation strategy. Crit Rev Biotechnol 40(1):15–30
Floros JD, Newsome R, Fisher W, Barbosa-Cánovas GV, Chen H,
Dunne CP et al (2010) Feeding the world today and tomorrow: the
importance of food science and technology. Compr Rev Food Sci
Food Saf 9:572–599. https://doi.org/10.1111/j.1541-4337.2010.
00127.x
Fogel R, Limson J (2016) Developing biosensors in developing
countries: South Africa as a case study. Biosensors 6:5. https://doi.
org/10.3390/bios6010005
Fraceto LF, Grillo R, de Medeiros GA, Scognamiglio V, Rea G,
Bartolucci C (2016) Nanotechnology in agriculture: which innovation potential does it have? Front Environ Sci 4:20. https://doi.org/
10.3389/fenvs.2016.00020
Frenk S, Ben-Moshe T, Dror I, Berkowitz B, Minz D (2013) Effect of
metal oxide nanoparticles on microbial community structure and
function in two different soil types. PLoS ONE 8:84441
Ghaani M, Cozzolino CA, Castelli G, Farris S (2016) An overview of
the intelligent packaging technologies in the food sector. Trends
Food Sci Tech 51:1–11. https://doi.org/10.1016/j.tifs.2016.02.008
Ghormade V, Deshpande MV, Paknikar KM (2011)Perspectives for
nano-biotechnology enabled protection and nutrition of plants.
Biotech Adv 29(6):792–803
Gibney E (2015) Buckyballs in space solve 100-year-old riddle. Nat
News. https://doi.org/10.1038/nature.2015.17987
GrilloR APC, Fraceto LF (2016) Nanotechnology applied to
bio-encapsulation of pesticides. J Nanosci Nanotechnol 16:1231–
1234. https://doi.org/10.1016/j.tifs.2003.10.005
Gruère GP (2012) Implications of nanotechnology growth in food and
agriculture in OECD countries. Food Policy 37:191–198. https://
doi.org/10.1016/j.jhazmat.2014.05.079
Guo J, Chi J (2014) Effect of Cd-tolerant plant growth-promoting
rhizobium on plant growth and Cd uptake by Loliummultiflorum
Lam. and Glycinemax (L.) Merr.in Cd-contaminated soil. Plant Soil
375:205–214. https://doi.org/10.1007/s11104-013-1952-1
Hajirostamlo B, Mirsaeedghazi N, Arefnia M, Shariati MA, Fard EA
(2015) The role of research and development in agriculture and its
dependent concepts in agriculture. Asian J Appl Sci Eng 4:79–81.
https://doi.org/10.1016/j.cocis.2008.01.005
Helar G, Chavan A (2015) Synthesis, characterization and stability of
gold nanoparticles using the fungus Fusarium oxysporum and its
impact on seed. Int J Recent Sci Res 6:3181–3318
Hoffmann M, Holtze EM, Wiesner MR (2007) Reactive oxygen species
generation on nanoparticulate material. In: Wiesner MR, Bottero JY
(eds) Environmental nanotechnology. Applications and impacts of
nanomaterials. McGraw Hill, New York, pp 155–203
Hossain K, Abbas SZ, Ahmad A, Rafatullah M, Ismail N, Pant G,
Avasn M (2020) Nanotechnology: a boost for the urgently needed
second green revolution in Indian agriculture. In: Nanobiotechnology in agriculture. Springer, Cham, pp 15–33
Hu Y, Li J, Ma L, PengQ FW, Zhang L et al (2010) High efficiency
transport of quantum dots into plant roots with the aid of silwet
L-77. Plant Physiol Biochem 48:703–709. https://doi.org/10.1016/j.
plaphy.2010.04.001
Ion AC, Ion I, Culetu A (2010) Carbon-based nanomaterials: environmental applications. Univ Politehn Bucharest 38:129–132
Jiling C, Youzhi F, Xiangui L, Junhua W (2016) Arbuscular
mycorrhizal fungi alleviate the negative effects of iron oxide
nanoparticles on bacterial community in rhizospheric soils. Front
Environ Sci 4:10
Josko I, Oleszczuk P, Futa B (2014) The effect of inorganic
nanoparticles (ZnO, Cr 2 O 3 , CuO and Ni) and their bulk counterparts
on enzyme activities in different soils. Geoderma 232:528–537
Kah M (2015) Nanopesticides and nanofertilizers: emerging contaminants or opportunities for risk mitigation? Front Chem 3:64. https://
doi.org/10.3389/fchem.2015.00064
Kandasamy S, Prema RS (2015) Methods of synthesis of nano particles
and its applications. J Chem Pharm Res 7:278–285
Khan MN, Mobin M, Abbas ZK, AlMutairi KA, Siddiqui ZH (2017)
Role of nanomaterials in plants under challenging environments.
Plant Physiol Biochem 110:194–209. https://doi.org/10.1016/j.
plaphy.2016.05.038
Khan MR, Akram M (2020) Nanoparticles and their fate in soil
ecosystem. In: Biogenic nano-particles and their use in
agro-ecosystems. Springer, Singapore, pp 221–245
Khan ST (2020) Interaction of engineered nanomaterials with soil
microbiome and plants: their impact on plant and soil health. In:
Hayat S, Pichtel J, Faizan M, Fariduddin Q (eds) Sustainable
agriculture reviews, vol 41. Springer, Cham
Khiew P, Chiu W, Tan T, Radiman S, Abd-Shukor R, Chia CH (2011)
Capping effect of palm-oil based organometallic ligand towards the
production of highly monodispersed nanostructured material. In:
Palm oil: nutrition, uses and impacts, pp 189–219, Nova Science
Khin MM, NairAS BVJ, Murugan R, Ramakrishna S (2012) A review
on nanomaterials for environmental remediation. Energy Environ
Sci 5:8075–8109. https://doi.org/10.1039/c2ee21818f
Khond VW, Kriplani VM (2016) Effect of nanofluid additives on
performances and emissions of emulsified diesel and biodiesel
fueled stationary CI engine: a comprehensive review. Renew
Sustain Energy Rev 59:1338–1348. https://doi.org/10.1016/j.rser.
2016.01.051
Khot LR, Sankaran S, Maja JM, Ehsani R, Schuster EW (2012)
Applications of nanomaterials in agricultural production and crop
protection: a review. Crop Prot 35:64–70. https://doi.org/10.1016/j.
cropro.2012.01.007
Kookana RS, Boxall AB, Reeves PT, Ashauer R, Beulke S,
Chaudhry Q et al (2014) Nanopesticides: guiding principles for
regulatory evaluation of environmental risks. J Agric Food Chem
62:4227–4240. https://doi.org/10.1021/jf500232f
Kumar N, Shah V, Walker VK (2012) Influence of a nanoparticle
mixture on an arctic soil community. Environ Toxicol Chem
31:131–135
Lambreva MD, Lavecchia T, Tyystjärvi E, Antal TK, Orlanducci S,
Margonelli A et al (2015) Potential of carbon nanotubes in algal
biotechnology. Photosyn Res 125:451–471. https://doi.org/10.1007/
s11120-015-0168-z
Liu RQ, Lal R (2015) Potentials of engineered nanoparticles as
fertilizers for increasing agronomic productions. Sci Total Environ
514:131–139. https://doi.org/10.1016/j.scitotenv.2015.01.104
Liu Y, He L, Mustapha A, Li H, Hu ZQ, Lin M (2009) Antibacterial
activities of zinc oxide nanoparticles against Escherichia coli O157:
H7. J Appl Microbiol 107:1193–1201. https://doi.org/10.1111/j.
1365-2672.2009.04303.x
Ma X, Geiser-Lee J, Deng Y, Kolmakov A (2010) Interactions between
engineered nanoparticles (ENPs) and plants: phytotoxicity, uptake
and accumulation. Sci Total Environ 408:3053–3061. https://doi.
org/10.1016/j.scitotenv.2010.03.031
Engineered Nanoparticles in Smart Agricultural Revolution …
15
