Hunt ML, Amrhein C (2002) Arsenic (III) and Arsenic (V) reactions with zerovalent iron corrosion
products. Environ Sci Technol 36(24):5455–5461
Hussam A (2009) Contending with a development disaster: SONO filters remove arsenic from well
water in Bangladesh (innovations case discussion: SONO filters). Innov Technol Gov Glob 4
(3):89–102
Ipsen SO, Gerth J, Förstner U (2005) Identifying and testing materials for arsenic removal by
permeable reactive barriers
Jain CK, Singh RD (2012) Technological options for the removal of arsenic with special reference
to South East Asia. J Environ Manag 107:1–18
Kaloti M, Kumar A (2016) Synthesis of chitosan-mediated silver coated γ-Fe2O3
(Ag-γ-Fe2O3@Cs) superparamagnetic binary nanohybrids for multifunctional applications. J
Phys Chem C 120(31):17627–17644
Kaloti M, Kumar A, Navani NK (2015) Synthesis of glucose-mediated Ag–γ-Fe 2 O 3 multifunctional nanocomposites in aqueous medium – a kinetic analysis of their catalytic activity for
4-nitrophenol reduction. Green Chem 17(10):4786–4799
Kanel SRAJ (2006) Arsenic (V) removal from groundwater using nano scale zero-valent Iron as a
colloidal reactive barrier material. Environ Sci Technol 40(6):2045–2050
Kanel SR, Grenèche J-M, Choi H (2006) Arsenic(V) removal from groundwater using nano scale
zero-valent Iron as a colloidal reactive barrier material. Environ Sci Technol 40(6):2045–2050
Kaplan DI, Cantrell KJ, Wietsma TW, Potter MA (1996) Retention of zero-valent iron colloids by
sand columns: application to chemical barrier formation. J Environ Qual 25:1086–1094
Khettab S, Chabbi-Chemrouk N (2017) Sense of place in the coastal town of Tipaza in Algeria:
local-community’s socio-cognitive representations. Int J Sustain Built Environ 6(2):544–554
Kumar M, Ramanathan AL, Mukherjee A, Verma S, Rahman MM, Naidu R (2018) Hydrogeomorphological influences for arsenic release and fate in the central Gangetic Basin, India.
Environ Technol Innov 12:243–260
Kumar A, Joshi H, Kumar A (2019) An approach of Multi-variate statistical design (Taguchi) and
numerical tool (COMSOL) in exploring the arsenic sequestration potential of γ-Fe2O3 NPs in
groundwater of Ballia district, Uttar-Pradesh, India. In AGU fall meeting abstracts (Vol. 2019,
pp. GH23B-1227). https://ui.adsabs.harvard.edu/abs/2019AGUFMGH23B1227K
Kumar A, Joshi H, Kumar A (2020) Remediation of Arsenic by Metal/ Metal Oxide Based
Nanocomposites/ Nanohybrids: Contamination Scenario in Groundwater, Practical challenges,
and future perspectives. Sep Purif Rev 00(00):1–32. https://doi.org/10.1080/15422119.2020.
1744649
Kundu S, Gupta AK (2005) Analysis and modeling of fixed bed column operations on As
(V) removal by adsorption onto iron oxide-coated cement (IOCC). J Colloid Interface Sci 290
(1):52–60
Langmuir D, Mahoney J, MacDonald A, Rowson J (1999) Predicting arsenic concentrations in the
porewaters of buried uranium mill tailings. Geochim Cosmochim Acta 63(19–20):3379–3394
Lata S, Samadder SR (2016) Removal of arsenic from water using nano adsorbents and challenges:
a review. J Environ Manag 166:387–406
Lee K, Lee Y, Yoon J, Kamala-Kannan S, Park S, Oh B (2009) Assessment of zero-valent iron as a
permeable reactive barrier for long-term removal of arsenic compounds from synthetic water.
Environ Technol 30(13):1425–1434
Leupin OX, Hug SJ, Badruzzaman a BM (2005) Arsenic removal from Bangladesh tube well water
with filter columns containing zerovalent Iron filings and sand. Environ Sci Technol 39
(20):8032–8037
Limmer M, Burken J (2016) Phytovolatilization of organic contaminants. Environ Sci Technol 50
(13):6632–6643
Lin S, Lu D, Liu Z (2012) Removal of arsenic contaminants with magnetic γ-Fe2O3 nanoparticles.
Chem Eng J 211–212:46–52
2 Nanotechnology-Based Treatment Systems for Arsenic Sequestration in. . .
53
products. Environ Sci Technol 36(24):5455–5461
Hussam A (2009) Contending with a development disaster: SONO filters remove arsenic from well
water in Bangladesh (innovations case discussion: SONO filters). Innov Technol Gov Glob 4
(3):89–102
Ipsen SO, Gerth J, Förstner U (2005) Identifying and testing materials for arsenic removal by
permeable reactive barriers
Jain CK, Singh RD (2012) Technological options for the removal of arsenic with special reference
to South East Asia. J Environ Manag 107:1–18
Kaloti M, Kumar A (2016) Synthesis of chitosan-mediated silver coated γ-Fe2O3
(Ag-γ-Fe2O3@Cs) superparamagnetic binary nanohybrids for multifunctional applications. J
Phys Chem C 120(31):17627–17644
Kaloti M, Kumar A, Navani NK (2015) Synthesis of glucose-mediated Ag–γ-Fe 2 O 3 multifunctional nanocomposites in aqueous medium – a kinetic analysis of their catalytic activity for
4-nitrophenol reduction. Green Chem 17(10):4786–4799
Kanel SRAJ (2006) Arsenic (V) removal from groundwater using nano scale zero-valent Iron as a
colloidal reactive barrier material. Environ Sci Technol 40(6):2045–2050
Kanel SR, Grenèche J-M, Choi H (2006) Arsenic(V) removal from groundwater using nano scale
zero-valent Iron as a colloidal reactive barrier material. Environ Sci Technol 40(6):2045–2050
Kaplan DI, Cantrell KJ, Wietsma TW, Potter MA (1996) Retention of zero-valent iron colloids by
sand columns: application to chemical barrier formation. J Environ Qual 25:1086–1094
Khettab S, Chabbi-Chemrouk N (2017) Sense of place in the coastal town of Tipaza in Algeria:
local-community’s socio-cognitive representations. Int J Sustain Built Environ 6(2):544–554
Kumar M, Ramanathan AL, Mukherjee A, Verma S, Rahman MM, Naidu R (2018) Hydrogeomorphological influences for arsenic release and fate in the central Gangetic Basin, India.
Environ Technol Innov 12:243–260
Kumar A, Joshi H, Kumar A (2019) An approach of Multi-variate statistical design (Taguchi) and
numerical tool (COMSOL) in exploring the arsenic sequestration potential of γ-Fe2O3 NPs in
groundwater of Ballia district, Uttar-Pradesh, India. In AGU fall meeting abstracts (Vol. 2019,
pp. GH23B-1227). https://ui.adsabs.harvard.edu/abs/2019AGUFMGH23B1227K
Kumar A, Joshi H, Kumar A (2020) Remediation of Arsenic by Metal/ Metal Oxide Based
Nanocomposites/ Nanohybrids: Contamination Scenario in Groundwater, Practical challenges,
and future perspectives. Sep Purif Rev 00(00):1–32. https://doi.org/10.1080/15422119.2020.
1744649
Kundu S, Gupta AK (2005) Analysis and modeling of fixed bed column operations on As
(V) removal by adsorption onto iron oxide-coated cement (IOCC). J Colloid Interface Sci 290
(1):52–60
Langmuir D, Mahoney J, MacDonald A, Rowson J (1999) Predicting arsenic concentrations in the
porewaters of buried uranium mill tailings. Geochim Cosmochim Acta 63(19–20):3379–3394
Lata S, Samadder SR (2016) Removal of arsenic from water using nano adsorbents and challenges:
a review. J Environ Manag 166:387–406
Lee K, Lee Y, Yoon J, Kamala-Kannan S, Park S, Oh B (2009) Assessment of zero-valent iron as a
permeable reactive barrier for long-term removal of arsenic compounds from synthetic water.
Environ Technol 30(13):1425–1434
Leupin OX, Hug SJ, Badruzzaman a BM (2005) Arsenic removal from Bangladesh tube well water
with filter columns containing zerovalent Iron filings and sand. Environ Sci Technol 39
(20):8032–8037
Limmer M, Burken J (2016) Phytovolatilization of organic contaminants. Environ Sci Technol 50
(13):6632–6643
Lin S, Lu D, Liu Z (2012) Removal of arsenic contaminants with magnetic γ-Fe2O3 nanoparticles.
Chem Eng J 211–212:46–52
2 Nanotechnology-Based Treatment Systems for Arsenic Sequestration in. . .
53
