References
Afsar MA, Khalil SK, Wahab S, Khalil IH, Khan AZ, Khattak MK
(2017) Impact of various ratios of nitrogen and sulfur on maize and
soil pH in semiarid region. Commun Soil Sci Plant Anal 48(8):825–
834
An B, Zhao D (2012) Immobilization of As (III) in soil and
groundwater using a new class of polysaccharide stabilized Fe–
Mn oxide nanoparticles. J Hazard Mat 211:332–341
Baragaño D, Forján R, Welte L, Gallego JLR (2020) Nanoremediation
of As and metals polluted soils by means of graphene oxide
nanoparticles. Sci Rep 10(1):1–10
Belay A, Claassens A, Wehner FC (2002) Effect of direct nitrogen and
potassium and residual phosphorus fertilizers on soil chemical
properties, microbial components and maize yield under long-term
crop rotation. Biol Fert Soils 35(6):420–427
Bellani L, Siracusa G, Giorgetti L, Di Gregorio S, Castiglione MR,
Spanò C, Muccifora S, Bottega S, Pini R, Tassi E (2020) TiO 2
nanoparticles in a biosolid-amended soil and their implication in
soil nutrients, microorganisms and Pisum sativum nutrition. Ecotox
Environ Safe 190:110095
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
Beylich A, Oberholzer HR, Schrader S, Höper H, Wilke BM (2010)
Evaluation of soil compaction effects on soil biota and soil
biological processes in soils. Soil Till Res 109(2):133–143
Bigham JM, Fitzpatrick RW, Schulze DG (2002) Iron oxides. Soil
Mineral Environ Appl 7:323–366
Bland GD, Lowry GV (2020) Multi-step method to extract moderately
soluble copper oxide nanoparticles from soil for quantification and
characterization. Anal Chem 92(14):9620–9628
Borovinskaya O, Gschwind S, Hattendorf B, Tanner M, Günther D
(2014) Simultaneous mass quantification of nanoparticles of
different composition in a mixture by microdroplet
generator-ICPTOFMS. Anal Chem 86(16):8142–8148
Carbonell G, de Imperial RM, Torrijos M, Delgado M, Rodriguez JA
(2011) Effects of municipal solid waste compost and mineral
fertilizer amendments on soil properties and heavy metals distribution in maize plants (Zea mays L.). Chemosphere 85(10):1614–
1623
Carley L, Panchagavi R, Song X, Davenport S, Bergemann CM,
McCumber AW, Gunsch CK, Simonin M (2020) Long-term effects
of copper nanopesticides on soil and sediment community diversity
in two outdoor mesocosm experiments. Environ Sci Technol 54
(14):8878–8889
Chavan S, Nadanathangam V (2020) Shifts in metabolic patterns of soil
bacterial communities on exposure to metal engineered nanomaterials. Ecotox Environ Safe 189:110012
Chen M, Zhou S, Zhu Y, Sun Y, Zeng G, Yang C, Xu P, Yan M, Liu Z,
Zhang W (2018) Toxicity of carbon nanomaterials to plants,
animals and microbes: recent progress from 2015-present. Chemosphere 206:255–264
Chung H, Son Y, Yoon TK, Kim S, Kim W (2011) The effect of
multi-walled carbon nanotubes on soil microbial activity. Ecotox
Environ Safe 74(4):569–575
Conway JR, Keller AA (2016) Gravity-driven transport of three
engineered nanomaterials in unsaturated soils and their effects on
soil pH and nutrient release. Water Res 98:250–260
Daam MA, Garcia MV, Scheffczyk A, Römbke J (2020) Acute and
chronic toxicity of the fungicide carbendazim to the earthworm
Eisenia fetida under tropical versus temperate laboratory conditions.
Chemosphere 255:126871
Das G, Patra JK, Debnath T, Ansari A, Shin HS (2019) Investigation of
antioxidant, antibacterial, antidiabetic, and cytotoxicity potential of
silver nanoparticles synthesized using the outer peel extract of
Ananas comosus (L.). PloS one 14(8):e0220950
de Jonge H, Mittelmeijer-Hazeleger MC (1996) Adsorption of CO 2 and
N 2 on soil organic matter: nature of porosity, surface area, and
diffusion mechanisms. Environ Sci Technol 30(2):408–413
De Souza A, Govea-Alcaide E, Masunaga SH, Fajardo-Rosabal L,
Effenberger F, Rossi LM, Jardim RF (2019) Impact of Fe 3 O 4
nanoparticle on nutrient accumulation in common bean plants
grown in soil. SN Appl Sci 1(4):308
Duncan E, Owens G (2019) Metal oxide nanomaterials used to
remediate heavy metal contaminated soils have strong effects on
nutrient and trace element phytoavailability. Sci Tot Environ
678:430–437
Edwards R, Rebedea I, Lepp NW, Lovell AJ (1999) An investigation
into the mechanism by which synthetic zeolites reduce labile metal
concentrations in soils. Environ Geochem Health 21(2):157–173
Egbosiuba TC, Abdulkareem AS, Kovo AS, Afolabi EA, Tijani JO,
Roos WD (2020) Enhanced adsorption of As (V) and Mn
(VII) from industrial wastewater using multi-walled carbon nanotubes and carboxylated multi-walled carbon nanotubes. Chemosphere 254:126780
Elsheery NI, Helaly MN, El-Hoseiny HM, Alam-Eldein SM (2020)
Zinc oxide and silicone nanoparticles to improve the resistance
mechanism and annual productivity of salt-stressed mango trees.
Agronomy 10(4):558
Fajardo C, Costa G, Nande M, Martín C, Martín M, Sánchez-Fortún S
(2019) Heavy metals immobilization capability of two iron-based
nanoparticles (nZVI and Fe3O4): soil and freshwater bioassays to
assess ecotoxicological impact. Sci Tot Environ 656:421–432
Förster B, Garcia M, Francimari O, Römbke J (2006) Effects of
carbendazim and lambda-cyhalothrin on soil invertebrates and leaf
litter decomposition in semi-field and field tests under tropical
conditions (Amazonia, Brazil). Eur J Soil Biol 42:S171–S179
Frampton GK, Jänsch S, Römbke S-F, J, Van den Brink PJ, (2006)
Effects of pesticides on soil invertebrates in laboratory studies: a
review and analysis using species sensitivity distributions. Environ
Toxicol Chem 25(9):2480–2489
Franco DV, Da Silva LM, Jardim WF (2009) Reduction of hexavalent
chromium in soil and ground water using zero-valent iron under
batch and semi-batch conditions. Water Air Soil Pollut 197(1–
4):49–60
Ghasemi E, Heydari A, Sillanpää M (2017) Superparamagnetic
Fe3O4@ EDTA nanoparticles as an efficient adsorbent for simultaneous removal of Ag (I), Hg (II), Mn (II), Zn (II), Pb (II) and Cd
(II) from water and soil environmental samples. Microchem J
131:51–56
Githinji LJ, Dane JH, Walker RH (2011) Physical and hydraulic
properties of inorganic amendments and modeling their effects on
water movement in sand-based root zones. Irrig Sci 29(1):65–77
Gong X, Huang D, Liu Y, Peng Z, Zeng G, Xu P, Cheng M, Wang R,
Wan J (2018) Remediation of contaminated soils by biotechnology
with nanomaterials: bio-behavior, applications, and perspectives.
Crit Rev Biotechnol 38(3):455–468
Gschwind S, Hagendorfer H, Frick DA, Günther D (2013) Mass
quantification of nanoparticles by single droplet calibration using
inductively coupled plasma mass spectrometry. Anal Chem 85
(12):5875–5883
Guo B, Jiang J, Serem W, Sharma VK, Ma X (2019) Attachment of
cerium oxide nanoparticles of different surface charges to kaolinite:
molecular and atomic mechanisms. Environ Res 177:108645
Hati KM, Mandal KG, Misra AK, Ghosh PK, Bandyopadhyay KK
(2006) Effect of inorganic fertilizer and farmyard manure on soil
physical properties, root distribution, and water-use efficiency of
soybean in Vertisols of central India. Biores Technol 97(16):2182–
2188
126
V. K. Singh et al.
Afsar MA, Khalil SK, Wahab S, Khalil IH, Khan AZ, Khattak MK
(2017) Impact of various ratios of nitrogen and sulfur on maize and
soil pH in semiarid region. Commun Soil Sci Plant Anal 48(8):825–
834
An B, Zhao D (2012) Immobilization of As (III) in soil and
groundwater using a new class of polysaccharide stabilized Fe–
Mn oxide nanoparticles. J Hazard Mat 211:332–341
Baragaño D, Forján R, Welte L, Gallego JLR (2020) Nanoremediation
of As and metals polluted soils by means of graphene oxide
nanoparticles. Sci Rep 10(1):1–10
Belay A, Claassens A, Wehner FC (2002) Effect of direct nitrogen and
potassium and residual phosphorus fertilizers on soil chemical
properties, microbial components and maize yield under long-term
crop rotation. Biol Fert Soils 35(6):420–427
Bellani L, Siracusa G, Giorgetti L, Di Gregorio S, Castiglione MR,
Spanò C, Muccifora S, Bottega S, Pini R, Tassi E (2020) TiO 2
nanoparticles in a biosolid-amended soil and their implication in
soil nutrients, microorganisms and Pisum sativum nutrition. Ecotox
Environ Safe 190:110095
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
Beylich A, Oberholzer HR, Schrader S, Höper H, Wilke BM (2010)
Evaluation of soil compaction effects on soil biota and soil
biological processes in soils. Soil Till Res 109(2):133–143
Bigham JM, Fitzpatrick RW, Schulze DG (2002) Iron oxides. Soil
Mineral Environ Appl 7:323–366
Bland GD, Lowry GV (2020) Multi-step method to extract moderately
soluble copper oxide nanoparticles from soil for quantification and
characterization. Anal Chem 92(14):9620–9628
Borovinskaya O, Gschwind S, Hattendorf B, Tanner M, Günther D
(2014) Simultaneous mass quantification of nanoparticles of
different composition in a mixture by microdroplet
generator-ICPTOFMS. Anal Chem 86(16):8142–8148
Carbonell G, de Imperial RM, Torrijos M, Delgado M, Rodriguez JA
(2011) Effects of municipal solid waste compost and mineral
fertilizer amendments on soil properties and heavy metals distribution in maize plants (Zea mays L.). Chemosphere 85(10):1614–
1623
Carley L, Panchagavi R, Song X, Davenport S, Bergemann CM,
McCumber AW, Gunsch CK, Simonin M (2020) Long-term effects
of copper nanopesticides on soil and sediment community diversity
in two outdoor mesocosm experiments. Environ Sci Technol 54
(14):8878–8889
Chavan S, Nadanathangam V (2020) Shifts in metabolic patterns of soil
bacterial communities on exposure to metal engineered nanomaterials. Ecotox Environ Safe 189:110012
Chen M, Zhou S, Zhu Y, Sun Y, Zeng G, Yang C, Xu P, Yan M, Liu Z,
Zhang W (2018) Toxicity of carbon nanomaterials to plants,
animals and microbes: recent progress from 2015-present. Chemosphere 206:255–264
Chung H, Son Y, Yoon TK, Kim S, Kim W (2011) The effect of
multi-walled carbon nanotubes on soil microbial activity. Ecotox
Environ Safe 74(4):569–575
Conway JR, Keller AA (2016) Gravity-driven transport of three
engineered nanomaterials in unsaturated soils and their effects on
soil pH and nutrient release. Water Res 98:250–260
Daam MA, Garcia MV, Scheffczyk A, Römbke J (2020) Acute and
chronic toxicity of the fungicide carbendazim to the earthworm
Eisenia fetida under tropical versus temperate laboratory conditions.
Chemosphere 255:126871
Das G, Patra JK, Debnath T, Ansari A, Shin HS (2019) Investigation of
antioxidant, antibacterial, antidiabetic, and cytotoxicity potential of
silver nanoparticles synthesized using the outer peel extract of
Ananas comosus (L.). PloS one 14(8):e0220950
de Jonge H, Mittelmeijer-Hazeleger MC (1996) Adsorption of CO 2 and
N 2 on soil organic matter: nature of porosity, surface area, and
diffusion mechanisms. Environ Sci Technol 30(2):408–413
De Souza A, Govea-Alcaide E, Masunaga SH, Fajardo-Rosabal L,
Effenberger F, Rossi LM, Jardim RF (2019) Impact of Fe 3 O 4
nanoparticle on nutrient accumulation in common bean plants
grown in soil. SN Appl Sci 1(4):308
Duncan E, Owens G (2019) Metal oxide nanomaterials used to
remediate heavy metal contaminated soils have strong effects on
nutrient and trace element phytoavailability. Sci Tot Environ
678:430–437
Edwards R, Rebedea I, Lepp NW, Lovell AJ (1999) An investigation
into the mechanism by which synthetic zeolites reduce labile metal
concentrations in soils. Environ Geochem Health 21(2):157–173
Egbosiuba TC, Abdulkareem AS, Kovo AS, Afolabi EA, Tijani JO,
Roos WD (2020) Enhanced adsorption of As (V) and Mn
(VII) from industrial wastewater using multi-walled carbon nanotubes and carboxylated multi-walled carbon nanotubes. Chemosphere 254:126780
Elsheery NI, Helaly MN, El-Hoseiny HM, Alam-Eldein SM (2020)
Zinc oxide and silicone nanoparticles to improve the resistance
mechanism and annual productivity of salt-stressed mango trees.
Agronomy 10(4):558
Fajardo C, Costa G, Nande M, Martín C, Martín M, Sánchez-Fortún S
(2019) Heavy metals immobilization capability of two iron-based
nanoparticles (nZVI and Fe3O4): soil and freshwater bioassays to
assess ecotoxicological impact. Sci Tot Environ 656:421–432
Förster B, Garcia M, Francimari O, Römbke J (2006) Effects of
carbendazim and lambda-cyhalothrin on soil invertebrates and leaf
litter decomposition in semi-field and field tests under tropical
conditions (Amazonia, Brazil). Eur J Soil Biol 42:S171–S179
Frampton GK, Jänsch S, Römbke S-F, J, Van den Brink PJ, (2006)
Effects of pesticides on soil invertebrates in laboratory studies: a
review and analysis using species sensitivity distributions. Environ
Toxicol Chem 25(9):2480–2489
Franco DV, Da Silva LM, Jardim WF (2009) Reduction of hexavalent
chromium in soil and ground water using zero-valent iron under
batch and semi-batch conditions. Water Air Soil Pollut 197(1–
4):49–60
Ghasemi E, Heydari A, Sillanpää M (2017) Superparamagnetic
Fe3O4@ EDTA nanoparticles as an efficient adsorbent for simultaneous removal of Ag (I), Hg (II), Mn (II), Zn (II), Pb (II) and Cd
(II) from water and soil environmental samples. Microchem J
131:51–56
Githinji LJ, Dane JH, Walker RH (2011) Physical and hydraulic
properties of inorganic amendments and modeling their effects on
water movement in sand-based root zones. Irrig Sci 29(1):65–77
Gong X, Huang D, Liu Y, Peng Z, Zeng G, Xu P, Cheng M, Wang R,
Wan J (2018) Remediation of contaminated soils by biotechnology
with nanomaterials: bio-behavior, applications, and perspectives.
Crit Rev Biotechnol 38(3):455–468
Gschwind S, Hagendorfer H, Frick DA, Günther D (2013) Mass
quantification of nanoparticles by single droplet calibration using
inductively coupled plasma mass spectrometry. Anal Chem 85
(12):5875–5883
Guo B, Jiang J, Serem W, Sharma VK, Ma X (2019) Attachment of
cerium oxide nanoparticles of different surface charges to kaolinite:
molecular and atomic mechanisms. Environ Res 177:108645
Hati KM, Mandal KG, Misra AK, Ghosh PK, Bandyopadhyay KK
(2006) Effect of inorganic fertilizer and farmyard manure on soil
physical properties, root distribution, and water-use efficiency of
soybean in Vertisols of central India. Biores Technol 97(16):2182–
2188
126
V. K. Singh et al.
