Ahmed MF (2001) An overview of arsenic removal technologies in Bangladesh and India. In:
Proceedings of BUET-UNU international workshop on technologies for arsenic removal from
drinking water, Dhaka, pp 5–7
Altundoğan HS, Altundoğan S, Tümen F, Bildik M (2000) Arsenic removal from aqueous solutions
by adsorption on red mud. Waste Manag 20:761–767
Andjelkovic I, Tran DNH, Kabiri S, Azari S, Markovic M, Losic D (2015) Graphene aerogels
decorated with alpha-FeOOH nanoparticles for efficient adsorption of arsenic from contaminated waters. ACS Appl Mater Interfaces 7:9758–9766. https://doi.org/10.1021/acsami.
5b01624
Anjum A, Lokeswari P, Kaur M, Datta M (2011) Removal of As (III) from aqueous solutions using
montmorillonite. J Anal Sci Methods Instrum 1:25
Bakare-Odunola M (2005) Determination of some metallic impurities present in soft drinks
marketed in Nigeria. Nig J Pharm 4:51–54
Baldwin DR, Marshall WJ (1999) Heavy metal poisoning and its laboratory investigation. Ann Clin
Biochem 36:267–300
Bang S, Patel M, Lippincott L, Meng X (2005) Removal of arsenic from groundwater by granular
titanium dioxide adsorbent. Chemosphere 60:389–397
Bansal RC, Goyal M (2005) Activated carbon adsorption. CRC press
Basu A, Saha D, Saha R, Ghosh T, Saha B (2014) A review on sources, toxicity and remediation
technologies for removing arsenic from drinking water. Res Chem Intermed 40:447–485
Benders R (2012) National institute for public health and environmental protection (RIVM). Integr
Electr Resour Plan 261:123
Benjamin MM (2014) Water chemistry. Waveland Press, Long Grove
Benjwal P, Kumar M, Chamoli P, Kar KK (2015) Enhanced photocatalytic degradation of methylene blue and adsorption of arsenic(III) by reduced graphene oxide (rGO)-metal oxide (TiO2/
Fe3O4) based nanocomposites. RSC Adv 5:73249–73260. https://doi.org/10.1039/c5ra13689j
Beolchini F, Pagnanelli F, De Michelis I, Vegliò F (2007) Treatment of concentrated arsenic
(V) solutions by micellar enhanced ultrafiltration with high molecular weight cut-off membrane.
J Hazard Mater 148:116–121
Bhardwaj V, Mirliss MJ (2005) Diatomaceous Earth filtration for drinking water. Water Encycl
1:174–177
Bottino A, Capannelli G, Comite A, Ferrari F, Firpo R, Venzano S (2009) Membrane technologies
for water treatment and agroindustrial sectors. C R Chim 12:882–888
Boujelben N, Bouzid J, Elouear Z, Feki M (2010) Retention of nickel from aqueous solutions using
iron oxide and manganese oxide coated sand: kinetic and thermodynamic studies. Environ
Technol 31:1623–1634
Brandhuber P, Amy G (1998) Alternative methods for membrane filtration of arsenic from drinking
water. Desalination 117:1–10
Bystrzejewska-Piotrowska G, Golimowski J, Urban PL (2009) Nanoparticles: their potential
toxicity, waste and environmental management. Waste Manag 29:2587–2595
Calder L (1988) Chromium contamination of groundwater. In: Advances in environmental science
and technology (USA). Wiley, New York
Carabante I (2012) Arsenic (V) adsorption on iron oxide: implications for soil remedeation and
water purification. Thesis, Luleå tekniska universitet
Chandler BD, Cramb DT, Shimizu GK (2006) Microporous metalÀ organic frameworks formed in
a stepwise manner from luminescent building blocks. J Am Chem Soc 128:10403–10412
Chandra V, Park J, Chun Y, Lee JW, Hwang I-C, Kim KS (2010) Water-dispersible magnetitereduced graphene oxide composites for arsenic removal. ACS Nano 4:3979–3986
Chang Y-C, Chen D-H (2005) Preparation and adsorption properties of monodisperse chitosanbound Fe3O4 magnetic nanoparticles for removal of Cu (II) ions. J Colloid Interface Sci
283:446–451
Chen B, Wang L, Zapata F, Qian G, Lobkovsky EB (2008) A luminescent microporous metalÀ
organic framework for the recognition and sensing of anions. J Am Chem Soc 130:6718–6719
186
T. S. Sakthivel et al.
Proceedings of BUET-UNU international workshop on technologies for arsenic removal from
drinking water, Dhaka, pp 5–7
Altundoğan HS, Altundoğan S, Tümen F, Bildik M (2000) Arsenic removal from aqueous solutions
by adsorption on red mud. Waste Manag 20:761–767
Andjelkovic I, Tran DNH, Kabiri S, Azari S, Markovic M, Losic D (2015) Graphene aerogels
decorated with alpha-FeOOH nanoparticles for efficient adsorption of arsenic from contaminated waters. ACS Appl Mater Interfaces 7:9758–9766. https://doi.org/10.1021/acsami.
5b01624
Anjum A, Lokeswari P, Kaur M, Datta M (2011) Removal of As (III) from aqueous solutions using
montmorillonite. J Anal Sci Methods Instrum 1:25
Bakare-Odunola M (2005) Determination of some metallic impurities present in soft drinks
marketed in Nigeria. Nig J Pharm 4:51–54
Baldwin DR, Marshall WJ (1999) Heavy metal poisoning and its laboratory investigation. Ann Clin
Biochem 36:267–300
Bang S, Patel M, Lippincott L, Meng X (2005) Removal of arsenic from groundwater by granular
titanium dioxide adsorbent. Chemosphere 60:389–397
Bansal RC, Goyal M (2005) Activated carbon adsorption. CRC press
Basu A, Saha D, Saha R, Ghosh T, Saha B (2014) A review on sources, toxicity and remediation
technologies for removing arsenic from drinking water. Res Chem Intermed 40:447–485
Benders R (2012) National institute for public health and environmental protection (RIVM). Integr
Electr Resour Plan 261:123
Benjamin MM (2014) Water chemistry. Waveland Press, Long Grove
Benjwal P, Kumar M, Chamoli P, Kar KK (2015) Enhanced photocatalytic degradation of methylene blue and adsorption of arsenic(III) by reduced graphene oxide (rGO)-metal oxide (TiO2/
Fe3O4) based nanocomposites. RSC Adv 5:73249–73260. https://doi.org/10.1039/c5ra13689j
Beolchini F, Pagnanelli F, De Michelis I, Vegliò F (2007) Treatment of concentrated arsenic
(V) solutions by micellar enhanced ultrafiltration with high molecular weight cut-off membrane.
J Hazard Mater 148:116–121
Bhardwaj V, Mirliss MJ (2005) Diatomaceous Earth filtration for drinking water. Water Encycl
1:174–177
Bottino A, Capannelli G, Comite A, Ferrari F, Firpo R, Venzano S (2009) Membrane technologies
for water treatment and agroindustrial sectors. C R Chim 12:882–888
Boujelben N, Bouzid J, Elouear Z, Feki M (2010) Retention of nickel from aqueous solutions using
iron oxide and manganese oxide coated sand: kinetic and thermodynamic studies. Environ
Technol 31:1623–1634
Brandhuber P, Amy G (1998) Alternative methods for membrane filtration of arsenic from drinking
water. Desalination 117:1–10
Bystrzejewska-Piotrowska G, Golimowski J, Urban PL (2009) Nanoparticles: their potential
toxicity, waste and environmental management. Waste Manag 29:2587–2595
Calder L (1988) Chromium contamination of groundwater. In: Advances in environmental science
and technology (USA). Wiley, New York
Carabante I (2012) Arsenic (V) adsorption on iron oxide: implications for soil remedeation and
water purification. Thesis, Luleå tekniska universitet
Chandler BD, Cramb DT, Shimizu GK (2006) Microporous metalÀ organic frameworks formed in
a stepwise manner from luminescent building blocks. J Am Chem Soc 128:10403–10412
Chandra V, Park J, Chun Y, Lee JW, Hwang I-C, Kim KS (2010) Water-dispersible magnetitereduced graphene oxide composites for arsenic removal. ACS Nano 4:3979–3986
Chang Y-C, Chen D-H (2005) Preparation and adsorption properties of monodisperse chitosanbound Fe3O4 magnetic nanoparticles for removal of Cu (II) ions. J Colloid Interface Sci
283:446–451
Chen B, Wang L, Zapata F, Qian G, Lobkovsky EB (2008) A luminescent microporous metalÀ
organic framework for the recognition and sensing of anions. J Am Chem Soc 130:6718–6719
186
T. S. Sakthivel et al.
