Malysheva A, Lombi E, Voelcker NH (2015) Bridging the divide
between human and environmental nanotoxicology. Nat Nanotechnol 1:0835–0844. https://doi.org/10.1038/nnano.2015.224
Marchiol L, Iafisco M, Fellet G, Adamiano A (2020) Nanotechnology
support the next agricultural revolution: perspectives to enhancement of nutrient use efficiency. In: Advances in agronomy, vol 161.
Academic Press, pp 27–116
Martirosyan A, Schneider YJ (2014) Engineered nanomaterials in food:
implications for food safety and consumer health. Int J Environ Res
Public Health 11:5720–5750. https://doi.org/10.3390/ijerph110605720
MingfangQ YL, Tianlai L (2013) Nano-TiO 2 improve the photosynthesis of tomato leaves under mild heat stress, biological trace
element research. Biol Trace Element Res 156(1):323–328
Mishra S, Fraceto LF, Yang X, Singh HB. (2018) Rewinding the
history of agriculture and emergence of nanotechnology in agriculture. In: Emerging trends in agri-nanotechnology: fundamental and
applied aspects. CABI UK, p 1
Mishra S, Singh HB (2015) Biosynthesized silver nanoparticles as a
nanoweapon against phytopathogens: exploring their scope and
potential in agriculture. Appl Microbiol Biotechnol 99:1097–1107.
https://doi.org/10.1007/s00253-014-6296-0
Mishra VK, Kumar A (2009) Impact of metal nanoparticles on the plant
growth promoting rhizobacteria. Dig J Nanomater Biostruct 4:587–
592
Mukhopadhyay SS (2014) Nanotechnology in agriculture: prospects
and constraints. Nanotechnol Sci Appl 7:63–71. https://doi.org/10.
2147/NSA.S39409
Nafees M, Ali S, Rizwan M, Aziz A, Adrees M, Hussain SM, Ali Q,
Junaid M (2020) Effect of nanoparticles on plant growth and
physiology and on soil microbes. In: Nanomaterials and environmental biotechnology. Springer, Cham, pp 65–85
Nima AZ, Lahiani MH, Watanabe F, Xu Y, Khodakovskaya MV,
Biris AS (2014) Plasmonically active nanorods for delivery of
bio-active agents and high-sensitivity SERS detection in planta.
RSC Adv 4:64985–64993. https://doi.org/10.1039/C4RA10358K
Nuruzzaman M, Rahman MM, Liu Y, Naidu R (2016) Nanoencapsulation, nano-guard for pesticides: a new window for safe application. J Agric Food Chem 64:1447–1483. https://doi.org/10.1021/
acs.jafc.5b05214
Ozdemir M, Kemerli T (2016) Innovative applications of micro and
nanoencapsulation in food packaging. In: Lakkis JM (ed) Encapsulation and controlled release technologies in food systems. Wiley,
Chichester
Pagano L, Servin AD, De La Torre-Roche R, Mukherjee A, Majumdar S, Hawthorne J et al (2016) Molecular response of crop plants to
engineered nanomaterials. Environ Sci Technol 50:7198–7207.
https://doi.org/10.1021/acs.est.6b01816
Pakrashi S, Jain N, Dalai S, Jayakumar J, Chandrasekaran PT,
Raichur AM et al (2014) In vivo genotoxicity assessment of
titanium dioxide nanoparticles by Allium cepa root tip assay at high
exposure concentrations. PLoS ONE 9:e98828. https://doi.org/10.
1371/journal.pone.0087789
Parada J, Rubilar O, Fernández-Baldo MA, Bertolino FA, Durán N,
Seabra AB, Tortella GR (2019) The nanotechnology among US: are
metal and metal oxides nanoparticles a nano or mega risk for soil
microbial communities? CritRevBiotech 39(2):157–172
Parada J, Rubilar O, Fernández-Baldo MA, Bertolino FA, Durán N,
Seabra AB, Tortella GR (2019) The nanotechnology among US: are
metal and metal oxides nanoparticles a nano or mega risk for soil
microbial communities? Crit Rev Biotechnol 39(2):157–172
Parisi C, Vigani M, Rodriguez-Cerezo E (2015) Agricultural nanotechnologies: what are the current possibilities? Nano Today 1:124–127.
https://doi.org/10.1016/j.nantod.2014.09.009
Patra JK, Baek KH (2017) Antibacterial activity and synergistic
antibacterial potential of biosynthesized silver nanoparticles against
foodborne pathogenic bacteria along with its anticandidal and
antioxidant effects. Front Microbiol 8:167. https://doi.org/10.3389/
fmicb.2017.00167
Pérez-de-Luque A (2017) Interaction of nanomaterials with plants:
what do we need for real applications in agriculture? Front Environ
Sci 5:12. https://doi.org/10.3389/fenvs.2017.00012
Pérez-Hernández H, Fernández-Luqueño F, Huerta-Lwanga E,
Mendoza-Vega J, Álvarez-Solís José D (2020) Effect of engineered
nanoparticles on soil biota: Do they improve the soil quality and
crop production or jeopardize them? Land Degrad Dev 31(6):1–25
Perlatti B, Bergo PLS, Silva MFG, Fernandes JB, Forim MR (2013)
Polymeric nanoparticle-based insecticides: a controlled release
purpose for agrochemicals. In: Trdan S (ed) Insecticides-development of safer and more effective technologies. InTech,
Rijeka, pp 523–550. https://doi.org/10.5772/53355
Perrault SD, Walkey C, Jennings T, Fischer HC, Chan WCW (2009)
Mediating tumor targeting efficiency of nanoparticles through
design—nano letters. Nano Lett 9:1909–1915. https://doi.org/10.
1021/nl900031y
Pirzadah B, Pirzadah TB, Jan A, Hakeem KR. (2020) Nanofertilizers: a
way forward for green economy. In: Nanobiotechnology in
agriculture. Springer, Cham, pp 99–112
Pradhan A, Seena S, Pascoal C, Cássio F (2011) Can metal
nanoparticles be a threat to microbial decomposers of plant litter
in streams? Microb Ecol 62:58–68
Prasad R (2014) Synthesis of silver nanoparticles in photosynthetic
plants. J Nanopart 2014:963961. https://doi.org/10.1155/2014/
963961
Prasad R, Kumar V, Prasad KS (2014) Nanotechnology in sustainable
agriculture: present concerns and future aspects. Afr J Biotechnol
13:705–713. https://doi.org/10.5897/AJBX2013.13554
Prasad R, PandeyR BI (2016) Engineering tailored nanoparticles with
microbes: quo vadis. WIREs Nanomed Nanobiotechnol 8:316–330.
https://doi.org/10.1002/wnan.1363
Priyanka N, Geetha N, Ghorbanpour M, Venkatachalam P (2019) Role
of engineered zinc and copper oxide nanoparticles in promoting
plant growth and yield: present status and future prospects. In:
Advances in phytonanotechnology. Academic Press, pp 183–201
Rai V, Acharya S, Dey N (2012) Implications of nanobiosensors in
agriculture. J Biomater Nanobiotechnol 3:315–324. https://doi.org/
10.4236/jbnb.2012.322039
Raliya R, Tarafdar JC, Gulecha K, Choudhary K, Ram R, Mal P et al
(2013) Review article; scope of nanoscience and nanotechnology in
agriculture. J Appl Biol Biotechnol 1:041–044
Rana S, Kalaichelvan PT (2013) Ecotoxicity of Nanoparticles. ISRN
Toxicol 2013:574648. https://doi.org/10.1155/2013/574648
Read DS, Matzke M, Gweon HS, Newbold LK, Heggelund L,
Ortiz MD, Lahive E, Spurgeon D, Svendsen C (2016) Soil pH
effects on the interactions between dissolved zinc, non-nano-and
nano-ZnO with soil bacterial communities. Environ Sci Poll Res 23
(5):4120–4128
Sabir S, Arshad M, Chaudhari SK (2014) Zinc oxide nanoparticles for
revolutionizing agriculture: synthesis and applications. Sci World J
2014:8. https://doi.org/10.1155/2014/925494
Sadeghzadeh B (2013) A review of zinc nutrition and plant breeding.
J Soil Sci Plant Nutr 13:905–927. https://doi.org/10.4067/S071895162013005000072
Sadik OA, Du N, Kariuki V, Okello V, Bushlyar V (2014) Current and
emerging technologies for the characterization of nanomaterials.
ACS Sustain Chem Eng 2:1707–1716. https://doi.org/10.1021/
sc500175v
Sagadevan S, Periasamy M (2014) Recent trends in nanobiosensors and
their applications—a review. Rev Adv Mater Sci 36:62–69
Samarajeewa AD, Velicogna JR, Princz JI, Subasinghe RM, Scroggins RP, Beaudette LA (2017) Effect of silver nano-particles on soil
16
P. Srivastava et al.
between human and environmental nanotoxicology. Nat Nanotechnol 1:0835–0844. https://doi.org/10.1038/nnano.2015.224
Marchiol L, Iafisco M, Fellet G, Adamiano A (2020) Nanotechnology
support the next agricultural revolution: perspectives to enhancement of nutrient use efficiency. In: Advances in agronomy, vol 161.
Academic Press, pp 27–116
Martirosyan A, Schneider YJ (2014) Engineered nanomaterials in food:
implications for food safety and consumer health. Int J Environ Res
Public Health 11:5720–5750. https://doi.org/10.3390/ijerph110605720
MingfangQ YL, Tianlai L (2013) Nano-TiO 2 improve the photosynthesis of tomato leaves under mild heat stress, biological trace
element research. Biol Trace Element Res 156(1):323–328
Mishra S, Fraceto LF, Yang X, Singh HB. (2018) Rewinding the
history of agriculture and emergence of nanotechnology in agriculture. In: Emerging trends in agri-nanotechnology: fundamental and
applied aspects. CABI UK, p 1
Mishra S, Singh HB (2015) Biosynthesized silver nanoparticles as a
nanoweapon against phytopathogens: exploring their scope and
potential in agriculture. Appl Microbiol Biotechnol 99:1097–1107.
https://doi.org/10.1007/s00253-014-6296-0
Mishra VK, Kumar A (2009) Impact of metal nanoparticles on the plant
growth promoting rhizobacteria. Dig J Nanomater Biostruct 4:587–
592
Mukhopadhyay SS (2014) Nanotechnology in agriculture: prospects
and constraints. Nanotechnol Sci Appl 7:63–71. https://doi.org/10.
2147/NSA.S39409
Nafees M, Ali S, Rizwan M, Aziz A, Adrees M, Hussain SM, Ali Q,
Junaid M (2020) Effect of nanoparticles on plant growth and
physiology and on soil microbes. In: Nanomaterials and environmental biotechnology. Springer, Cham, pp 65–85
Nima AZ, Lahiani MH, Watanabe F, Xu Y, Khodakovskaya MV,
Biris AS (2014) Plasmonically active nanorods for delivery of
bio-active agents and high-sensitivity SERS detection in planta.
RSC Adv 4:64985–64993. https://doi.org/10.1039/C4RA10358K
Nuruzzaman M, Rahman MM, Liu Y, Naidu R (2016) Nanoencapsulation, nano-guard for pesticides: a new window for safe application. J Agric Food Chem 64:1447–1483. https://doi.org/10.1021/
acs.jafc.5b05214
Ozdemir M, Kemerli T (2016) Innovative applications of micro and
nanoencapsulation in food packaging. In: Lakkis JM (ed) Encapsulation and controlled release technologies in food systems. Wiley,
Chichester
Pagano L, Servin AD, De La Torre-Roche R, Mukherjee A, Majumdar S, Hawthorne J et al (2016) Molecular response of crop plants to
engineered nanomaterials. Environ Sci Technol 50:7198–7207.
https://doi.org/10.1021/acs.est.6b01816
Pakrashi S, Jain N, Dalai S, Jayakumar J, Chandrasekaran PT,
Raichur AM et al (2014) In vivo genotoxicity assessment of
titanium dioxide nanoparticles by Allium cepa root tip assay at high
exposure concentrations. PLoS ONE 9:e98828. https://doi.org/10.
1371/journal.pone.0087789
Parada J, Rubilar O, Fernández-Baldo MA, Bertolino FA, Durán N,
Seabra AB, Tortella GR (2019) The nanotechnology among US: are
metal and metal oxides nanoparticles a nano or mega risk for soil
microbial communities? CritRevBiotech 39(2):157–172
Parada J, Rubilar O, Fernández-Baldo MA, Bertolino FA, Durán N,
Seabra AB, Tortella GR (2019) The nanotechnology among US: are
metal and metal oxides nanoparticles a nano or mega risk for soil
microbial communities? Crit Rev Biotechnol 39(2):157–172
Parisi C, Vigani M, Rodriguez-Cerezo E (2015) Agricultural nanotechnologies: what are the current possibilities? Nano Today 1:124–127.
https://doi.org/10.1016/j.nantod.2014.09.009
Patra JK, Baek KH (2017) Antibacterial activity and synergistic
antibacterial potential of biosynthesized silver nanoparticles against
foodborne pathogenic bacteria along with its anticandidal and
antioxidant effects. Front Microbiol 8:167. https://doi.org/10.3389/
fmicb.2017.00167
Pérez-de-Luque A (2017) Interaction of nanomaterials with plants:
what do we need for real applications in agriculture? Front Environ
Sci 5:12. https://doi.org/10.3389/fenvs.2017.00012
Pérez-Hernández H, Fernández-Luqueño F, Huerta-Lwanga E,
Mendoza-Vega J, Álvarez-Solís José D (2020) Effect of engineered
nanoparticles on soil biota: Do they improve the soil quality and
crop production or jeopardize them? Land Degrad Dev 31(6):1–25
Perlatti B, Bergo PLS, Silva MFG, Fernandes JB, Forim MR (2013)
Polymeric nanoparticle-based insecticides: a controlled release
purpose for agrochemicals. In: Trdan S (ed) Insecticides-development of safer and more effective technologies. InTech,
Rijeka, pp 523–550. https://doi.org/10.5772/53355
Perrault SD, Walkey C, Jennings T, Fischer HC, Chan WCW (2009)
Mediating tumor targeting efficiency of nanoparticles through
design—nano letters. Nano Lett 9:1909–1915. https://doi.org/10.
1021/nl900031y
Pirzadah B, Pirzadah TB, Jan A, Hakeem KR. (2020) Nanofertilizers: a
way forward for green economy. In: Nanobiotechnology in
agriculture. Springer, Cham, pp 99–112
Pradhan A, Seena S, Pascoal C, Cássio F (2011) Can metal
nanoparticles be a threat to microbial decomposers of plant litter
in streams? Microb Ecol 62:58–68
Prasad R (2014) Synthesis of silver nanoparticles in photosynthetic
plants. J Nanopart 2014:963961. https://doi.org/10.1155/2014/
963961
Prasad R, Kumar V, Prasad KS (2014) Nanotechnology in sustainable
agriculture: present concerns and future aspects. Afr J Biotechnol
13:705–713. https://doi.org/10.5897/AJBX2013.13554
Prasad R, PandeyR BI (2016) Engineering tailored nanoparticles with
microbes: quo vadis. WIREs Nanomed Nanobiotechnol 8:316–330.
https://doi.org/10.1002/wnan.1363
Priyanka N, Geetha N, Ghorbanpour M, Venkatachalam P (2019) Role
of engineered zinc and copper oxide nanoparticles in promoting
plant growth and yield: present status and future prospects. In:
Advances in phytonanotechnology. Academic Press, pp 183–201
Rai V, Acharya S, Dey N (2012) Implications of nanobiosensors in
agriculture. J Biomater Nanobiotechnol 3:315–324. https://doi.org/
10.4236/jbnb.2012.322039
Raliya R, Tarafdar JC, Gulecha K, Choudhary K, Ram R, Mal P et al
(2013) Review article; scope of nanoscience and nanotechnology in
agriculture. J Appl Biol Biotechnol 1:041–044
Rana S, Kalaichelvan PT (2013) Ecotoxicity of Nanoparticles. ISRN
Toxicol 2013:574648. https://doi.org/10.1155/2013/574648
Read DS, Matzke M, Gweon HS, Newbold LK, Heggelund L,
Ortiz MD, Lahive E, Spurgeon D, Svendsen C (2016) Soil pH
effects on the interactions between dissolved zinc, non-nano-and
nano-ZnO with soil bacterial communities. Environ Sci Poll Res 23
(5):4120–4128
Sabir S, Arshad M, Chaudhari SK (2014) Zinc oxide nanoparticles for
revolutionizing agriculture: synthesis and applications. Sci World J
2014:8. https://doi.org/10.1155/2014/925494
Sadeghzadeh B (2013) A review of zinc nutrition and plant breeding.
J Soil Sci Plant Nutr 13:905–927. https://doi.org/10.4067/S071895162013005000072
Sadik OA, Du N, Kariuki V, Okello V, Bushlyar V (2014) Current and
emerging technologies for the characterization of nanomaterials.
ACS Sustain Chem Eng 2:1707–1716. https://doi.org/10.1021/
sc500175v
Sagadevan S, Periasamy M (2014) Recent trends in nanobiosensors and
their applications—a review. Rev Adv Mater Sci 36:62–69
Samarajeewa AD, Velicogna JR, Princz JI, Subasinghe RM, Scroggins RP, Beaudette LA (2017) Effect of silver nano-particles on soil
16
P. Srivastava et al.
