Ren X, Chen C, Nagatsu M, Wang X (2011) Carbon nanotubes as adsorbents in environmental
pollution management: a review. Chem Eng J 170:395–410
Saifuddin N, Nian CY, Zhan LW, Ning KX (2011) Chitosan-silver nanoparticles composite as
point-of-use drinking water filtration system for household to remove pesticides in water. Asian
J Biochem 6:142–159
Sarno M, Casa M, Cirillo C, Ciambelli P (2017) Complete removal of persistent pesticide using
reduced graphene oxide-silver nanocomposite. Chem Eng Trans 60:151–156
Satapanajaru T, Anurakpongsatorn P, Pengthamkeerati P, Boparai H (2008) Remediation of
atrazine-contaminated soil and water by nano zerovalent iron. Water Air Soil Pollut
192:349–359
Savage N, Diallo MS (2005) Nanomaterials and water purification: opportunities and challenges. J
Nanopart Res 7:331–342
Sen Gupta S, Chakraborty I, Maliyekkal SM, Adit MT, Pandey DK, Das SK, Pradeep T (2015)
Simultaneous dehalogenation and removal of persistent halocarbon pesticides from water using
graphene nanocomposites: a case study of lindane. Sustain Chem Eng 3:1155–1163
Senthilnathan J, Philip L (2009) Removal of mixed pesticides from drinking water system by
photodegradation using suspended and immobilized TiO 2 . J Env Sci Health Part B 44:262–270
Senthilnathan J, Philip L (2010) Removal of mixed pesticides from drinking water system using
surfactant-assisted nano-TiO2. Water Air Soil Pollut 210:143–154
Shi B, Zhuang X, Yan X, Lu J, Tang H (2010) Adsorption of atrazine by natural organic matter and
surfactant dispersed carbon nanotubes. J Environ Sci 22:1195–1202
Šimkovič K, Derco J, Valičková M (2015) Removal of selected pesticides by nano zero-valent iron.
Acta Chim Slovaca 8:152–155
Singhal A, Lind ML (2018) Removal of pesticide toxicity by cysteine-capped ag nanoparticles and
study of their adsorption kinetics. Int J Nanomedicine 13:25–29
Smith SC, Rodrigues DF (2015) Carbon-based nanomaterials for removal of chemical and
biological contaminants from water: a review of mechanisms and applications. Carbon
91:122–143
Sun YP, Li X, Cao J, Zhang W, Wang HP (2006) Characterization of zero-valent iron particles. Adv
Colloid Interface Sci 120:47–56
Taha MR, Mobasser S (2015) Adsorption of DDT and PCB by nanomaterials from residual soil.
PLoS One 10(12):e0144071
Thompson JM, Chisholm BJ, Bezbaruah AN (2010) Reductive dechlorination of chloroacetanilide
herbicide (alachlor) using zero-valent iron nanoparticles. Environ Eng Sci 27:227–232
Tosco T, Papini MP, Viggi CC, Sethi R (2014) Nanoscale zerovalent iron particles for ground water
remediation: a review. J Clean Prod 77:10–21
Tratnyek PG, Johnson RL (2006) Nanotechnologies for environmental cleanup. Nano Today
1:44–48
Uma Shanker MR, Jassal V (2017) Recent strategies for removal and degradation of persistent &
toxic organochlorine pesticides using nanoparticles: a review. J Environ Manage 190:208–222
Van der Bruggen B, Schaep J, Maes W, Wilms D, Vandecasteele C (1998) Nanofiltration as a
treatment method for the removal of pesticides from ground waters. Desalination 117:139–147
Van der Bruggen B, Schaep J, Wilms D, Vandecasteele C (1999) Influence of molecular size,
polarity and charge on the retention of organic molecules by nanofiltration. J Membr Sci
156:29–41
Van der Bruggen B, Everaert K, Wilms D, Vandecasteele C (2001) Application of nanofiltration for
removal of pesticides, nitrate and hardness from ground water: rejection properties and economic evaluation. J Membr Sci 193:239–248
Willner MR, Vikesland PJ (2018) Nanomaterial enabled sensors for environmental contaminants. J
Nanobiotechnol 16:95
Wu Q, Zhao G, Feng C, Wang C, Wang Z (2011) Preparation of a graphene-based magnetic
nanocomposite for the extraction of carbamate pesticides from environmental water samples. J
Chromatogr A 1218:7936–7942
8 Nanomaterials for Remediation of Pesticides
203
pollution management: a review. Chem Eng J 170:395–410
Saifuddin N, Nian CY, Zhan LW, Ning KX (2011) Chitosan-silver nanoparticles composite as
point-of-use drinking water filtration system for household to remove pesticides in water. Asian
J Biochem 6:142–159
Sarno M, Casa M, Cirillo C, Ciambelli P (2017) Complete removal of persistent pesticide using
reduced graphene oxide-silver nanocomposite. Chem Eng Trans 60:151–156
Satapanajaru T, Anurakpongsatorn P, Pengthamkeerati P, Boparai H (2008) Remediation of
atrazine-contaminated soil and water by nano zerovalent iron. Water Air Soil Pollut
192:349–359
Savage N, Diallo MS (2005) Nanomaterials and water purification: opportunities and challenges. J
Nanopart Res 7:331–342
Sen Gupta S, Chakraborty I, Maliyekkal SM, Adit MT, Pandey DK, Das SK, Pradeep T (2015)
Simultaneous dehalogenation and removal of persistent halocarbon pesticides from water using
graphene nanocomposites: a case study of lindane. Sustain Chem Eng 3:1155–1163
Senthilnathan J, Philip L (2009) Removal of mixed pesticides from drinking water system by
photodegradation using suspended and immobilized TiO 2 . J Env Sci Health Part B 44:262–270
Senthilnathan J, Philip L (2010) Removal of mixed pesticides from drinking water system using
surfactant-assisted nano-TiO2. Water Air Soil Pollut 210:143–154
Shi B, Zhuang X, Yan X, Lu J, Tang H (2010) Adsorption of atrazine by natural organic matter and
surfactant dispersed carbon nanotubes. J Environ Sci 22:1195–1202
Šimkovič K, Derco J, Valičková M (2015) Removal of selected pesticides by nano zero-valent iron.
Acta Chim Slovaca 8:152–155
Singhal A, Lind ML (2018) Removal of pesticide toxicity by cysteine-capped ag nanoparticles and
study of their adsorption kinetics. Int J Nanomedicine 13:25–29
Smith SC, Rodrigues DF (2015) Carbon-based nanomaterials for removal of chemical and
biological contaminants from water: a review of mechanisms and applications. Carbon
91:122–143
Sun YP, Li X, Cao J, Zhang W, Wang HP (2006) Characterization of zero-valent iron particles. Adv
Colloid Interface Sci 120:47–56
Taha MR, Mobasser S (2015) Adsorption of DDT and PCB by nanomaterials from residual soil.
PLoS One 10(12):e0144071
Thompson JM, Chisholm BJ, Bezbaruah AN (2010) Reductive dechlorination of chloroacetanilide
herbicide (alachlor) using zero-valent iron nanoparticles. Environ Eng Sci 27:227–232
Tosco T, Papini MP, Viggi CC, Sethi R (2014) Nanoscale zerovalent iron particles for ground water
remediation: a review. J Clean Prod 77:10–21
Tratnyek PG, Johnson RL (2006) Nanotechnologies for environmental cleanup. Nano Today
1:44–48
Uma Shanker MR, Jassal V (2017) Recent strategies for removal and degradation of persistent &
toxic organochlorine pesticides using nanoparticles: a review. J Environ Manage 190:208–222
Van der Bruggen B, Schaep J, Maes W, Wilms D, Vandecasteele C (1998) Nanofiltration as a
treatment method for the removal of pesticides from ground waters. Desalination 117:139–147
Van der Bruggen B, Schaep J, Wilms D, Vandecasteele C (1999) Influence of molecular size,
polarity and charge on the retention of organic molecules by nanofiltration. J Membr Sci
156:29–41
Van der Bruggen B, Everaert K, Wilms D, Vandecasteele C (2001) Application of nanofiltration for
removal of pesticides, nitrate and hardness from ground water: rejection properties and economic evaluation. J Membr Sci 193:239–248
Willner MR, Vikesland PJ (2018) Nanomaterial enabled sensors for environmental contaminants. J
Nanobiotechnol 16:95
Wu Q, Zhao G, Feng C, Wang C, Wang Z (2011) Preparation of a graphene-based magnetic
nanocomposite for the extraction of carbamate pesticides from environmental water samples. J
Chromatogr A 1218:7936–7942
8 Nanomaterials for Remediation of Pesticides
203
