Danish MI, Qazi IA, Zeb A, Habib A, Awan MA, Khan Z (2013) Arsenic removal from aqueous
solution using pure and metal-doped titania nanoparticles coated on glass beads: adsorption and
column studies. J Nanomater 2013:1–17
Das S, Bora SS, Yadav RNS, Barooah M (2017) A metagenomic approach to decipher the
indigenous microbial communities of arsenic contaminated groundwater of Assam. Genomics
Data 12:89–96
Davodi B, Jahangiri M (2014) Determination of optimum conditions for removal of As (III) and As
(V) by polyaniline/polystyrene nanocomposite. Synth Met 194:97–101
De D, Mandal SM, Bhattacharya J, Ram S, Roy SK (2009) Iron oxide nanoparticle-assisted arsenic
removal from aqueous system. J Environ Sci Health A Tox Hazard Subst Environ Eng 44
(2):155–162
Diwakar J, Johnston SG, Burton ED, Das Shrestha S (2015) Arsenic mobilization in an alluvial
aquifer of the Terai region, Nepal. J Hydrol Reg Stud 4:59–79
Duarte AALS, Cardoso SJA, Alçada AJ (2009) Emerging and innovative techniques for arsenic
removal applied to a small water supply system. Sustainability 1(4):1288–1304
Elizalde-Gonzalez MP, Mattusch J, Einicke W-D, Wennrich R (2001) Sorption on natural solids for
arsenic removal. Chem Eng J 81:187–195
Fan D et al (2017) Sulfidation of iron-based materials: a review of processes and implications for
water treatment and remediation. Environ Sci Technol 51(22):13070–13085
Fiúza A, Futuro A, Silva A, Ferreira A, Guimarães F (2015) In-situ removal of arsenic from
groundwater using permeable reactive barriers with iron based sorbents
Genc-Fuhrman H, Tjell JC, McConchie D (2004) Adsorption of arsenic from water using activated
neutralized red mud. Environ Sci Technol 38(8):2428–2434
Ghurye GL, Clifford DA, Tripp AR (1999) Combined arsenic and nitrate removal by ion exchange.
J Am Water Works Assoc 91(10):85–96
Gillman GP (2006) A simple technology for arsenic removal from drinking water using
hydrotalcite. Sci Total Environ 366(2–3):926–931
Grassi M, Kaykioglu G, Belgiorno V (2012) Emerging compounds removal from wastewater.
Springer, Dordrecht, pp 15–38
Greenleaf JE, Lin JC, Sengupta AK (2006) Two novel applications of ion exchange fibers: arsenic
removal and chemical-free softening of hard water. Environ Prog 25(4):300–311
Gu Z, Fang J, Deng B (2005) Preparation and evaluation of adsorbents for arsenic removal. Environ
Sci Technol 39(10):3833–3843
Gupta PK, Yadav B, Kumar A, Singh RP (2020) India’s Major subsurface pollutants under future
climatic scenarios: challenges and remedial solutions. In: Singh P, Singh R, Srivastava V (eds)
contemporary environmental issues and challenges in era of climate change. Springer,
Singapore. https://doi.org/10.1007/978-981-32-9595-7_6
Han YS, Gallegos TJ, Demond AH, Hayes KF (2011) FeS-coated sand for removal of arsenic(III)
under anaerobic conditions in permeable reactive barriers. Water Res 45(2):593–604
Haron MJ, Ab Rahim F, Abdullah AH, Hussein MZ, Kassim A (2008) Sorption removal of arsenic
by cerium-exchanged zeolite P. Mater Sci Eng B Solid-State Mater Adv Technol 149
(2):204–208
He F, Zhao D, Paul C (2010) Field assessment of carboxymethyl cellulose stabilized iron
nanoparticles for in situ destruction of chlorinated solvents in source zones. Water Res 44
(7):2360–2370
Hristovski K, Baumgardner A, Westerhoff P (2007) Selecting metal oxide nanomaterials for arsenic
removal in fixed bed columns: from nanopowders to aggregated nanoparticle media. J Hazard
Mater 147(1–2):265–274
Hristovski KD, Westerhoff PK, Möller T, Sylvester P (2009) Effect of synthesis conditions on
nano-iron (hydr)oxide impregnated granulated activated carbon. Chem Eng J 146(2):237–243
Hung WC, Fu SH, Tseng JJ, Chu H, Ko TH (2007) Study on photocatalytic degradation of gaseous
dichloromethane using pure and iron ion-doped TiO2 prepared by the sol-gel method.
Chemosphere 66(11):2142–2151
52
A. Kumar et al.
solution using pure and metal-doped titania nanoparticles coated on glass beads: adsorption and
column studies. J Nanomater 2013:1–17
Das S, Bora SS, Yadav RNS, Barooah M (2017) A metagenomic approach to decipher the
indigenous microbial communities of arsenic contaminated groundwater of Assam. Genomics
Data 12:89–96
Davodi B, Jahangiri M (2014) Determination of optimum conditions for removal of As (III) and As
(V) by polyaniline/polystyrene nanocomposite. Synth Met 194:97–101
De D, Mandal SM, Bhattacharya J, Ram S, Roy SK (2009) Iron oxide nanoparticle-assisted arsenic
removal from aqueous system. J Environ Sci Health A Tox Hazard Subst Environ Eng 44
(2):155–162
Diwakar J, Johnston SG, Burton ED, Das Shrestha S (2015) Arsenic mobilization in an alluvial
aquifer of the Terai region, Nepal. J Hydrol Reg Stud 4:59–79
Duarte AALS, Cardoso SJA, Alçada AJ (2009) Emerging and innovative techniques for arsenic
removal applied to a small water supply system. Sustainability 1(4):1288–1304
Elizalde-Gonzalez MP, Mattusch J, Einicke W-D, Wennrich R (2001) Sorption on natural solids for
arsenic removal. Chem Eng J 81:187–195
Fan D et al (2017) Sulfidation of iron-based materials: a review of processes and implications for
water treatment and remediation. Environ Sci Technol 51(22):13070–13085
Fiúza A, Futuro A, Silva A, Ferreira A, Guimarães F (2015) In-situ removal of arsenic from
groundwater using permeable reactive barriers with iron based sorbents
Genc-Fuhrman H, Tjell JC, McConchie D (2004) Adsorption of arsenic from water using activated
neutralized red mud. Environ Sci Technol 38(8):2428–2434
Ghurye GL, Clifford DA, Tripp AR (1999) Combined arsenic and nitrate removal by ion exchange.
J Am Water Works Assoc 91(10):85–96
Gillman GP (2006) A simple technology for arsenic removal from drinking water using
hydrotalcite. Sci Total Environ 366(2–3):926–931
Grassi M, Kaykioglu G, Belgiorno V (2012) Emerging compounds removal from wastewater.
Springer, Dordrecht, pp 15–38
Greenleaf JE, Lin JC, Sengupta AK (2006) Two novel applications of ion exchange fibers: arsenic
removal and chemical-free softening of hard water. Environ Prog 25(4):300–311
Gu Z, Fang J, Deng B (2005) Preparation and evaluation of adsorbents for arsenic removal. Environ
Sci Technol 39(10):3833–3843
Gupta PK, Yadav B, Kumar A, Singh RP (2020) India’s Major subsurface pollutants under future
climatic scenarios: challenges and remedial solutions. In: Singh P, Singh R, Srivastava V (eds)
contemporary environmental issues and challenges in era of climate change. Springer,
Singapore. https://doi.org/10.1007/978-981-32-9595-7_6
Han YS, Gallegos TJ, Demond AH, Hayes KF (2011) FeS-coated sand for removal of arsenic(III)
under anaerobic conditions in permeable reactive barriers. Water Res 45(2):593–604
Haron MJ, Ab Rahim F, Abdullah AH, Hussein MZ, Kassim A (2008) Sorption removal of arsenic
by cerium-exchanged zeolite P. Mater Sci Eng B Solid-State Mater Adv Technol 149
(2):204–208
He F, Zhao D, Paul C (2010) Field assessment of carboxymethyl cellulose stabilized iron
nanoparticles for in situ destruction of chlorinated solvents in source zones. Water Res 44
(7):2360–2370
Hristovski K, Baumgardner A, Westerhoff P (2007) Selecting metal oxide nanomaterials for arsenic
removal in fixed bed columns: from nanopowders to aggregated nanoparticle media. J Hazard
Mater 147(1–2):265–274
Hristovski KD, Westerhoff PK, Möller T, Sylvester P (2009) Effect of synthesis conditions on
nano-iron (hydr)oxide impregnated granulated activated carbon. Chem Eng J 146(2):237–243
Hung WC, Fu SH, Tseng JJ, Chu H, Ko TH (2007) Study on photocatalytic degradation of gaseous
dichloromethane using pure and iron ion-doped TiO2 prepared by the sol-gel method.
Chemosphere 66(11):2142–2151
52
A. Kumar et al.
