Dehghani MH, Niasar ZS, Mehrnia MR, Shayeghi MA, Al-Ghouti M, Heibati B, McKay G,
Yetilmezsoy K (2017) Optimizing the removal of organophosphorus pesticide malathion from
water using multi-walled carbon nanotubes. Chem Eng J 15:22–32
Deng J, Shao Y, Gao N, Deng Y, Tan C, Zhou S, Hu X (2012) Multiwalled carbon nanotubes as
adsorbents for removal of herbicide diuron from aqueous solution. Chem Eng J 193:339–347
Firozjaee TT, Mehrdadi N, Baghdadi M, Bidhendi GN (2017) The removal of diazinon from
aqueous solution by chitosan/carbon nanotube adsorbent. Desalin Water Treat 79:291–300
Firozjaee TT, Mehrdadi N, Baghdadi M, Bidhendi GRN (2018) Application of nanotechnology in
pesticides removal from aqueous solutions—a review. Int J Nanosci Nanotechnol 14:43–56
Fouad DM, Mohamed MB (2012) Comparative study of the photocatalytic activity of semiconductor nanostructures and their hybrid metal nanocomposites on the photodegradation of malathion.
J Nanomater 2012:524123
Garner KL, Keller AA (2014) Emerging patterns for engineered nanomaterials in the environment:
a review of fate and toxicity studies. J Nanopart Res 16:2503
Gomez S, Marchena CL, Renzini MS, Pizzio L, Pierella L (2015) In situ generated TiO2 over
zeolitic supports as reusable photocatalysts for the degradation of dichlorvos. Appl Catal
Environ 162:167–173
Guerra FD, Attia MF, Whitehead DC, Alexis F (2018) Nanotechnology for environmental remediation: materials and applications. Molecules 23:1760
Gupta SS, Chakraborty I, Maliyekkal SM, Mark TA, Pandey DK, Das SK, Pradeep T (2015)
Simultaneous dehalogenation and removal of persistent halocarbon pesticides from waste water
using graphene nanocomposites: A case study of lindane. Sustainable Chem Eng 3:1155–1116
Hubetska TS, Krivtsov I, Kobylinska NG, Menéndez JRG (2018) Hydrophobically functionalized
magnetic nanocomposite as a new adsorbent for preconcentration of organochlorine pesticides
in water solution. IEEE Magn Lett 9:2102805. https://doi.org/10.1109/lmag.2018.2824248
Joo SH, Cheng F (2006) Nanotechnology for environmental remediation. Springer Science &
Business Media, Berlin
Karn B, Kuiken T, Otto M (2009) Nanotechnology and in situ remediation: a review of the benefits
and potential risks. Environ Health Perspect 117:1823–1831
Kaur R, Hasan A, Iqbal N, Alam S, Saini MK, Raza SK (2014) Synthesis and surface engineering of
magnetic nanoparticles for environmental cleanup and pesticide residue analysis: a review. J
Sep Sci 37:1805–1825
Keum YS, Li QX (2004) Reduction of nitroaromatic pesticides with zero-valent iron. Chemosphere
54:255–263
Kim D, Choi C, Kim T, Park M, Kim J (2007) Degradation patterns of organophosphorus
insecticide, chlorpyrifos by functionalized zerovalent Iron. J Korean Soc Appl Biol Chem
50:321–326
Kim G, Jeong W, Choe S (2008) Dechlorination of atrazine using zero-valent iron (Fe0) under
neutral pH conditions. J Hazard Mater 155:502–506
Kiso Y, Sugiura Y, Kitao T, Nishimura K (2001) Effects of hydrophobicity and molecular size on
rejection of aromatic pesticides with nanofiltration membranes. J Membr Sci 192:1–10
Koutsospyros A, Pavlov J, Fawcett J, Strickland D, Smolinski B, Braida W (2012) Degradation of
high energetic and insensitive munitions compounds by Fe/Cu bimetal reduction. J Hazard
Mater 219–220:75–81
Li YH, Dinga J, Luanb Z, Dia Z, Zhua Y, Xua C, Wu D, Wei B (2003) Competitive adsorption of
Pb
2+ , Cu
2+ and Cd
2+ ions from aqueous solutions by multiwalled carbon nanotubes. Carbon
41:2787–2792
Liang P, Liu Y, Guo L, Zeng J, Pei HL (2004) Multiwalled carbon nanotubes as solid-phase
extraction adsorbent for the preconcentration of trace metal ions and their determination by
inductively coupled plasma atomic emission spectrometry. J Anal At Spectrom 19:489–1492
Liu X, Zhang H, Ma Y, Wu X, Meng L, Guo Y, Yu G, Liu Y (2013) Graphene-coated silica as a
highly efficient sorbent for residual organophosphorus pesticides in water. J Mater Chem A
1:1875–1884
8 Nanomaterials for Remediation of Pesticides
201
Yetilmezsoy K (2017) Optimizing the removal of organophosphorus pesticide malathion from
water using multi-walled carbon nanotubes. Chem Eng J 15:22–32
Deng J, Shao Y, Gao N, Deng Y, Tan C, Zhou S, Hu X (2012) Multiwalled carbon nanotubes as
adsorbents for removal of herbicide diuron from aqueous solution. Chem Eng J 193:339–347
Firozjaee TT, Mehrdadi N, Baghdadi M, Bidhendi GN (2017) The removal of diazinon from
aqueous solution by chitosan/carbon nanotube adsorbent. Desalin Water Treat 79:291–300
Firozjaee TT, Mehrdadi N, Baghdadi M, Bidhendi GRN (2018) Application of nanotechnology in
pesticides removal from aqueous solutions—a review. Int J Nanosci Nanotechnol 14:43–56
Fouad DM, Mohamed MB (2012) Comparative study of the photocatalytic activity of semiconductor nanostructures and their hybrid metal nanocomposites on the photodegradation of malathion.
J Nanomater 2012:524123
Garner KL, Keller AA (2014) Emerging patterns for engineered nanomaterials in the environment:
a review of fate and toxicity studies. J Nanopart Res 16:2503
Gomez S, Marchena CL, Renzini MS, Pizzio L, Pierella L (2015) In situ generated TiO2 over
zeolitic supports as reusable photocatalysts for the degradation of dichlorvos. Appl Catal
Environ 162:167–173
Guerra FD, Attia MF, Whitehead DC, Alexis F (2018) Nanotechnology for environmental remediation: materials and applications. Molecules 23:1760
Gupta SS, Chakraborty I, Maliyekkal SM, Mark TA, Pandey DK, Das SK, Pradeep T (2015)
Simultaneous dehalogenation and removal of persistent halocarbon pesticides from waste water
using graphene nanocomposites: A case study of lindane. Sustainable Chem Eng 3:1155–1116
Hubetska TS, Krivtsov I, Kobylinska NG, Menéndez JRG (2018) Hydrophobically functionalized
magnetic nanocomposite as a new adsorbent for preconcentration of organochlorine pesticides
in water solution. IEEE Magn Lett 9:2102805. https://doi.org/10.1109/lmag.2018.2824248
Joo SH, Cheng F (2006) Nanotechnology for environmental remediation. Springer Science &
Business Media, Berlin
Karn B, Kuiken T, Otto M (2009) Nanotechnology and in situ remediation: a review of the benefits
and potential risks. Environ Health Perspect 117:1823–1831
Kaur R, Hasan A, Iqbal N, Alam S, Saini MK, Raza SK (2014) Synthesis and surface engineering of
magnetic nanoparticles for environmental cleanup and pesticide residue analysis: a review. J
Sep Sci 37:1805–1825
Keum YS, Li QX (2004) Reduction of nitroaromatic pesticides with zero-valent iron. Chemosphere
54:255–263
Kim D, Choi C, Kim T, Park M, Kim J (2007) Degradation patterns of organophosphorus
insecticide, chlorpyrifos by functionalized zerovalent Iron. J Korean Soc Appl Biol Chem
50:321–326
Kim G, Jeong W, Choe S (2008) Dechlorination of atrazine using zero-valent iron (Fe0) under
neutral pH conditions. J Hazard Mater 155:502–506
Kiso Y, Sugiura Y, Kitao T, Nishimura K (2001) Effects of hydrophobicity and molecular size on
rejection of aromatic pesticides with nanofiltration membranes. J Membr Sci 192:1–10
Koutsospyros A, Pavlov J, Fawcett J, Strickland D, Smolinski B, Braida W (2012) Degradation of
high energetic and insensitive munitions compounds by Fe/Cu bimetal reduction. J Hazard
Mater 219–220:75–81
Li YH, Dinga J, Luanb Z, Dia Z, Zhua Y, Xua C, Wu D, Wei B (2003) Competitive adsorption of
Pb
2+ , Cu
2+ and Cd
2+ ions from aqueous solutions by multiwalled carbon nanotubes. Carbon
41:2787–2792
Liang P, Liu Y, Guo L, Zeng J, Pei HL (2004) Multiwalled carbon nanotubes as solid-phase
extraction adsorbent for the preconcentration of trace metal ions and their determination by
inductively coupled plasma atomic emission spectrometry. J Anal At Spectrom 19:489–1492
Liu X, Zhang H, Ma Y, Wu X, Meng L, Guo Y, Yu G, Liu Y (2013) Graphene-coated silica as a
highly efficient sorbent for residual organophosphorus pesticides in water. J Mater Chem A
1:1875–1884
8 Nanomaterials for Remediation of Pesticides
201
