References
Abbas Q, Yousaf B, Ullah H, Ali MU, Ok YS, Rinklebe J (2019)
Environmental transformation and nano-toxicity of engineered
nano-particles (ENPs) in aquatic and terrestrial organisms. Crit
Rev Env Sci Tec 1–59
Androvitsaneas P, Young AB, Schneider C, Maier S, Kamp M, Höfling
S et al (2016) Charged quantum dot micropillar system for
deterministic light-matter interactions. Phys Rev B 93:241409.
https://doi.org/10.1103/physrevb.93.241409
Anton N, Vandamme TF (2011) Nano-emulsions and micro-emulsions:
clarifications of the critical differences. Pharm Res 28:978–985.
https://doi.org/10.1007/s11095-010-0309-1
Aragay G, Pons J, Ros J, Merkoci A (2010) Aminopyrazole-based
ligand induces gold nanoparticle formation and remains available
for heavy metal ions sensing. A simple “mix and detect” approach.
Langmuir 26:10165–10170. https://doi.org/10.1021/la100288s
Asad S, Arsh M (2012) Silicon carbide whisker-mediated plant
transformation. In: Gerhardt R (ed) Properties and applications of
silicon carbide. BoD-Books on Deman, Rijeka, pp 1–16. https://doi.
org/10.5772/15721
Asadishad B, Chahal S, Akbari A, Cianciarelli V, Azodi M,
Ghoshal S, Tufenkji N (2018) Amendment of agricultural soil
with metal nanoparticles: effects on soil enzyme activity and
microbial community composition. Environ Sci Technol 52
(4):1908–1918
Aziz N, Faraz M, Pandey R, Sakir M, Fatma T, Varma A et al (2015)
Facile algae-derived route to biogenic silver nanoparticles: synthesis, antibacterial and photocatalytic properties. Langmuir 3:111605–
111612. https://doi.org/10.1021/acs.langmuir.5b03081
Aziz N, Pandey R, Barman I, Prasad R (2016) Leveraging the attributes
of Mucor hiemalis-derived silver nanoparticles for a synergistic
broad-spectrum antimicrobial platform. Front Microbiol 7:1984.
https://doi.org/10.3389/fmicb.2016.01984
Bakalova R, Zhelev Z, Ohba H, Ishikawa M, Baba Y (2004) Quantum
dots as photosensitizers? Nat Biotechnol 22:1360–1361. https://doi.
org/10.1038/nbt1104-1360
Baskar V, Meeran S, Shabeer STK, Sruthi S, Ali J (2018) Historic
review on modern herbal nanogel formulation and delivery
methods. Int J Pharm Pharm Sci 10:1–10. https://doi.org/10.
22159/ijpps.2018v10i10.23071
Bellingham BK (2011) Proximal soil sensing. Vadose Zone J 10:1342–
1342. https://doi.org/10.2136/vzj2011.0105br
Ben-Moshe T, Frenk S, Dror I, Minz D, Berkowitz B (2013) Effects of
metal oxide nanoparticles on soil properties. Chemosphere 90
(2):640–646
Berekaa MM (2015) Nanotechnology in food industry; advances in
food processing, packaging and food Safety. Int J Curr Microbiol
App Sci 4:345–357
Bhattacharyya A, Duraisamy P, Govindarajan M, Buhroo AA, Prasad R
(2016) Nano-biofungicides: emerging trend in insect pest control.
In: Prasad R (ed) Advances and applications through fungal
nanobiotechnology. Springer International Publishing, Cham,
pp 307–319. https://doi.org/10.1007/978-3-319-42990-8_15
Bhushani JA, Anandharamakrishnan C (2014) Electrospinning and
electrospraying techniques: potential food based applications.
Trends Food Sci Technol 38:21–33. https://doi.org/10.1016/j.tifs.
2014.03.004
HusseinMZ B, Zainal Z, Yahaya AH, Foo DWV (2002) Controlled
release of a plant growth regulator, a-naphthaleneacetate from the
lamella of Zn-Al-layered double hydroxide nanocomposite. J Contr
Rel 82(2–3):417–427
Bulovic V, Mandell A, Perlman A (2004) Molecular memory device.
US 20050116256, A1
Bumbudsanpharoke N, Ko S (2015) Nano-food packaging: an overview of market, migration research, and safety regulations. J Food
Sci 80:R910–R923. https://doi.org/10.1111/1750-3841.12861
Burman U, Kumar P (2018) Plant response to engineered nanoparticles.
In: Nanomaterials in plants, algae, and microorganisms. Academic
Press, pp 103–118
Buzea C, Pacheco II, Robbie K (2007) Nanomaterials and nanoparticles: sources and toxicity. Biointerphases 2, MR17–MR71
Chai H, Yao J, Sun J, Zhang C, Liu W, Zhu M, Ceccanti B (2015) The
effect of metal oxide nanoparticles on functional bacteria and
metabolic profiles in agricultural soil. Bull Environ Contam Toxicol
94:490–495
Chakravarthy AK, Bhattacharyya A, Shashank PR, EpidiTT DB,
Mandal SK (2012) DNA-tagged nano gold: a new tool for the
control of the armyworm, Spodoptera litura Fab. (Lepidoptera:
Noctuidae). Afr J Biotechnol 11:9295–9301. https://doi.org/10.5897/
AJB11.883
Chavan S, Nadanathangam V (2020) Shifts in metabolic patterns of soil
bacterial communities on exposure to metal engineered nanomaterials. Ecotoxicol Environ Saf 189:110012
Chen HD, Yada R (2011) Nanotechnologies in agriculture: new tools
for sustainable development. Trends Food Sci Technol 22:585–594.
https://doi.org/10.1016/j.tifs.2011.09.004
Coll C, Notter D, Gottschalk F, Sun T, Som C, Nowack B (2016)
Probabilistic environmental risk assessment of five nanomaterials
(nano-TiO 2 , nano-Ag, nano-ZnO, CNT, and fullerenes). Nanotoxicology 10:4
Concha-Guerrero SI, Brito EMS, Piñón-Castillo HA et al (2014) Effect
of CuO nanoparticles over isolated bacterial strains from agricultural soil. J Nanomater 2014:13
Couvreur P, Dubernet C, Puisieux F (1995) Controlled drug delivery
with nanoparticles: current possibilities and future trends. Eur J
Pharm Biopharm 41:2–13
Cox A, Venkatachalam P, Sahi S, Sharma N (2017) Reprint of: silver
and titanium dioxide nanoparticle toxicity in plants: a review of
current research. Plant Physiol Biochem 110:33–49. https://doi.org/
10.1016/j.plaphy.2016.08.007
Das S, Wolfson BP, Tetard L, Tharkur J, Bazata J, Santra S (2015)
Effect of N-acetyl cysteine coated CdS:Mn/ZnS quantum dots on
seed germination and seedling growth of snow pea (Pisum sativum
L.): imaging and spectroscopic studies. Environ Sci 2:203–212.
https://doi.org/10.1039/c4en00198b
Dasgupta N, Ranjan S, Mundekkad D, Ramalingam C, Shanker R,
Kumar A (2015) Nanotechnology in agro-food: from field to plate.
Food Res Int 69:381–400. https://doi.org/10.1016/j.foodres.2015.
01.005
de Medeiros GA, Arruda FB, SakaiE FM (2001) The influence of crop
canopy on evapotranspiration and crop coefficient of beans
(Phaseolusvulgaris L.). Agric Water Manage 49:211–224. https://
doi.org/10.1016/S0378-3774(00)00150-5
de Oca-Vásquez GM, Solano-Campos F, Vega-Baudrit JR, López-Mondéjar R, Odriozola I, Vera A, Moreno JL, Bastida F (2020)
Environmentally relevant concentrations of silver nanoparticles
diminish soil microbial biomass but do not alter enzyme activities or
microbial diversity. J Hazard Mat 391:122224
De Oliveira JL, Campos EVR, Bakshi M, Abhilash PC, Fraceto LF
(2014) Application of nanotechnology for the encapsulation of
botanical insecticides for sustainable agriculture: prospects and
promises. Biotechnol Adv 32:1550–1561. https://doi.org/10.1016/j.
biotechadv.2014.10.010
Dimkpa CO (2014) Can nanotechnology deliver the promised benefits
without negatively impacting soil microbial life? J Basic Microbiol
54:889–904. https://doi.org/10.1002/jobm.201400298
Dixit R, Wasiullah MD, Pandiyan K, Singh UB, Sahu A et al (2015)
Bioremediation of heavy metals from soil and aquatic environment:
14
P. Srivastava et al.
Abbas Q, Yousaf B, Ullah H, Ali MU, Ok YS, Rinklebe J (2019)
Environmental transformation and nano-toxicity of engineered
nano-particles (ENPs) in aquatic and terrestrial organisms. Crit
Rev Env Sci Tec 1–59
Androvitsaneas P, Young AB, Schneider C, Maier S, Kamp M, Höfling
S et al (2016) Charged quantum dot micropillar system for
deterministic light-matter interactions. Phys Rev B 93:241409.
https://doi.org/10.1103/physrevb.93.241409
Anton N, Vandamme TF (2011) Nano-emulsions and micro-emulsions:
clarifications of the critical differences. Pharm Res 28:978–985.
https://doi.org/10.1007/s11095-010-0309-1
Aragay G, Pons J, Ros J, Merkoci A (2010) Aminopyrazole-based
ligand induces gold nanoparticle formation and remains available
for heavy metal ions sensing. A simple “mix and detect” approach.
Langmuir 26:10165–10170. https://doi.org/10.1021/la100288s
Asad S, Arsh M (2012) Silicon carbide whisker-mediated plant
transformation. In: Gerhardt R (ed) Properties and applications of
silicon carbide. BoD-Books on Deman, Rijeka, pp 1–16. https://doi.
org/10.5772/15721
Asadishad B, Chahal S, Akbari A, Cianciarelli V, Azodi M,
Ghoshal S, Tufenkji N (2018) Amendment of agricultural soil
with metal nanoparticles: effects on soil enzyme activity and
microbial community composition. Environ Sci Technol 52
(4):1908–1918
Aziz N, Faraz M, Pandey R, Sakir M, Fatma T, Varma A et al (2015)
Facile algae-derived route to biogenic silver nanoparticles: synthesis, antibacterial and photocatalytic properties. Langmuir 3:111605–
111612. https://doi.org/10.1021/acs.langmuir.5b03081
Aziz N, Pandey R, Barman I, Prasad R (2016) Leveraging the attributes
of Mucor hiemalis-derived silver nanoparticles for a synergistic
broad-spectrum antimicrobial platform. Front Microbiol 7:1984.
https://doi.org/10.3389/fmicb.2016.01984
Bakalova R, Zhelev Z, Ohba H, Ishikawa M, Baba Y (2004) Quantum
dots as photosensitizers? Nat Biotechnol 22:1360–1361. https://doi.
org/10.1038/nbt1104-1360
Baskar V, Meeran S, Shabeer STK, Sruthi S, Ali J (2018) Historic
review on modern herbal nanogel formulation and delivery
methods. Int J Pharm Pharm Sci 10:1–10. https://doi.org/10.
22159/ijpps.2018v10i10.23071
Bellingham BK (2011) Proximal soil sensing. Vadose Zone J 10:1342–
1342. https://doi.org/10.2136/vzj2011.0105br
Ben-Moshe T, Frenk S, Dror I, Minz D, Berkowitz B (2013) Effects of
metal oxide nanoparticles on soil properties. Chemosphere 90
(2):640–646
Berekaa MM (2015) Nanotechnology in food industry; advances in
food processing, packaging and food Safety. Int J Curr Microbiol
App Sci 4:345–357
Bhattacharyya A, Duraisamy P, Govindarajan M, Buhroo AA, Prasad R
(2016) Nano-biofungicides: emerging trend in insect pest control.
In: Prasad R (ed) Advances and applications through fungal
nanobiotechnology. Springer International Publishing, Cham,
pp 307–319. https://doi.org/10.1007/978-3-319-42990-8_15
Bhushani JA, Anandharamakrishnan C (2014) Electrospinning and
electrospraying techniques: potential food based applications.
Trends Food Sci Technol 38:21–33. https://doi.org/10.1016/j.tifs.
2014.03.004
HusseinMZ B, Zainal Z, Yahaya AH, Foo DWV (2002) Controlled
release of a plant growth regulator, a-naphthaleneacetate from the
lamella of Zn-Al-layered double hydroxide nanocomposite. J Contr
Rel 82(2–3):417–427
Bulovic V, Mandell A, Perlman A (2004) Molecular memory device.
US 20050116256, A1
Bumbudsanpharoke N, Ko S (2015) Nano-food packaging: an overview of market, migration research, and safety regulations. J Food
Sci 80:R910–R923. https://doi.org/10.1111/1750-3841.12861
Burman U, Kumar P (2018) Plant response to engineered nanoparticles.
In: Nanomaterials in plants, algae, and microorganisms. Academic
Press, pp 103–118
Buzea C, Pacheco II, Robbie K (2007) Nanomaterials and nanoparticles: sources and toxicity. Biointerphases 2, MR17–MR71
Chai H, Yao J, Sun J, Zhang C, Liu W, Zhu M, Ceccanti B (2015) The
effect of metal oxide nanoparticles on functional bacteria and
metabolic profiles in agricultural soil. Bull Environ Contam Toxicol
94:490–495
Chakravarthy AK, Bhattacharyya A, Shashank PR, EpidiTT DB,
Mandal SK (2012) DNA-tagged nano gold: a new tool for the
control of the armyworm, Spodoptera litura Fab. (Lepidoptera:
Noctuidae). Afr J Biotechnol 11:9295–9301. https://doi.org/10.5897/
AJB11.883
Chavan S, Nadanathangam V (2020) Shifts in metabolic patterns of soil
bacterial communities on exposure to metal engineered nanomaterials. Ecotoxicol Environ Saf 189:110012
Chen HD, Yada R (2011) Nanotechnologies in agriculture: new tools
for sustainable development. Trends Food Sci Technol 22:585–594.
https://doi.org/10.1016/j.tifs.2011.09.004
Coll C, Notter D, Gottschalk F, Sun T, Som C, Nowack B (2016)
Probabilistic environmental risk assessment of five nanomaterials
(nano-TiO 2 , nano-Ag, nano-ZnO, CNT, and fullerenes). Nanotoxicology 10:4
Concha-Guerrero SI, Brito EMS, Piñón-Castillo HA et al (2014) Effect
of CuO nanoparticles over isolated bacterial strains from agricultural soil. J Nanomater 2014:13
Couvreur P, Dubernet C, Puisieux F (1995) Controlled drug delivery
with nanoparticles: current possibilities and future trends. Eur J
Pharm Biopharm 41:2–13
Cox A, Venkatachalam P, Sahi S, Sharma N (2017) Reprint of: silver
and titanium dioxide nanoparticle toxicity in plants: a review of
current research. Plant Physiol Biochem 110:33–49. https://doi.org/
10.1016/j.plaphy.2016.08.007
Das S, Wolfson BP, Tetard L, Tharkur J, Bazata J, Santra S (2015)
Effect of N-acetyl cysteine coated CdS:Mn/ZnS quantum dots on
seed germination and seedling growth of snow pea (Pisum sativum
L.): imaging and spectroscopic studies. Environ Sci 2:203–212.
https://doi.org/10.1039/c4en00198b
Dasgupta N, Ranjan S, Mundekkad D, Ramalingam C, Shanker R,
Kumar A (2015) Nanotechnology in agro-food: from field to plate.
Food Res Int 69:381–400. https://doi.org/10.1016/j.foodres.2015.
01.005
de Medeiros GA, Arruda FB, SakaiE FM (2001) The influence of crop
canopy on evapotranspiration and crop coefficient of beans
(Phaseolusvulgaris L.). Agric Water Manage 49:211–224. https://
doi.org/10.1016/S0378-3774(00)00150-5
de Oca-Vásquez GM, Solano-Campos F, Vega-Baudrit JR, López-Mondéjar R, Odriozola I, Vera A, Moreno JL, Bastida F (2020)
Environmentally relevant concentrations of silver nanoparticles
diminish soil microbial biomass but do not alter enzyme activities or
microbial diversity. J Hazard Mat 391:122224
De Oliveira JL, Campos EVR, Bakshi M, Abhilash PC, Fraceto LF
(2014) Application of nanotechnology for the encapsulation of
botanical insecticides for sustainable agriculture: prospects and
promises. Biotechnol Adv 32:1550–1561. https://doi.org/10.1016/j.
biotechadv.2014.10.010
Dimkpa CO (2014) Can nanotechnology deliver the promised benefits
without negatively impacting soil microbial life? J Basic Microbiol
54:889–904. https://doi.org/10.1002/jobm.201400298
Dixit R, Wasiullah MD, Pandiyan K, Singh UB, Sahu A et al (2015)
Bioremediation of heavy metals from soil and aquatic environment:
14
P. Srivastava et al.
