Litter MI, Morgada ME, Bundschuh J (2010) Possible treatments for arsenic removal in Latin
American waters for human consumption. Environ Pollut 158:1105–1118
Liu YY, Leus K, Grzywa M, Weinberger D, Strubbe K, Vrielinck H, Van Deun R, Volkmer D, Van
Speybroeck V, Van Der Voort P (2012) Synthesis, structural characterization, and catalytic
performance of a vanadium-based metal–organic framework (COMOC-3). Eur J Inorg Chem
2012:2819–2827
Liu H, Zuo K, Vecitis CD (2014a) Titanium dioxide-coated carbon nanotube network filter for rapid
and effective arsenic sorption. Environ Sci Technol 48:13871–13879
Liu J, Chen L, Cui H, Zhang J, Zhang L, Su C-Y (2014b) Applications of metal–organic
frameworks in heterogeneous supramolecular catalysis. Chem Soc Rev 43:6011–6061
Logsdon GS, Kohne R, Abel S, LaBonde S (2002) Slow sand filtration for small water systems. J
Environ Eng Sci 1:339–348
Lorenzen L, Van Deventer J, Landi W (1995) Factors affecting the mechanism of the adsorption of
arsenic species on activated carbon. Miner Eng 8:557–569
Low JJ, Benin AI, Jakubczak P, Abrahamian JF, Faheem SA, Willis RR (2009) Virtual high
throughput screening confirmed experimentally: porous coordination polymer hydration. J
Am Chem Soc 131:15834–15842
Lu C, Liu C (2006) Removal of nickel (II) from aqueous solution by carbon nanotubes. J Chem
Technol Biotechnol 81:1932–1940
Luo X, Wang C, Luo S, Dong R, Tu X, Zeng G (2012) Adsorption of As (III) and As (V) from water
using magnetite Fe 3 O 4-reduced graphite oxide–MnO 2 nanocomposites. Chem Eng J
187:45–52
Luo XB, Wang CC, Wang LC, Deng F, Luo SL, Tu XM, Au CT (2013) Nanocomposites of
graphene oxide-hydrated zirconium oxide for simultaneous removal of As(III) and As(V) from
water. Chem Eng J 220:98–106. https://doi.org/10.1016/j.cej.2013.01.017
Mandal S, Sahu MK, Patel RK (2013) Adsorption studies of arsenic (III) removal from water by
zirconium polyacrylamide hybrid material (ZrPACM-43). Water Resour Ind 4:51–67
Marcovecchio JE, Botté SE, Freije RH (2007) Heavy metals, major metals, trace elements. Handb
Water Anal 2:275–311
Margat J, Van der Gun J (2013) Groundwater around the world: a geographic synopsis. CRC Press,
Boca Raton/London/New York
Martinson CA, Reddy K (2009) Adsorption of arsenic (III) and arsenic (V) by cupric oxide
nanoparticles. J Colloid Interface Sci 336:406–411
Mayo J, Yavuz C, Yean S, Cong L, Shipley H, Yu W, Falkner J, Kan A, Tomson M, Colvin V
(2007) The effect of nanocrystalline magnetite size on arsenic removal. Sci Technol Adv Mater
8:71
McMurry J, Fay R (2004) In: Hamann KP (ed) Hydrogen, oxygen and water, McMurry Fay
Chemistry, 4th edn. Pearson Education, Upper Saddle River, pp 575–599
Melia O, Coagulation C (1972) In: Weber WJ Jr (ed) Floccula-tion. Physicochemical processes for
water quality control. Wiley Interscience, New York
Mendie U (2005) The nature of water. In: The theory and practice of clean water production for
domestic and industrial use, vol 1. Lacto-Medals Publishers, Lagos, p 21
Mishra AK, Ramaprabhu S (2010) Magnetite decorated multiwalled carbon nanotube based
supercapacitor for arsenic removal and desalination of seawater. J Phys Chem C
114:2583–2590. https://doi.org/10.1021/jp911631w
Misra, M. & Lenz, P. (2008). Removal of arsenic from drinking and process water: Google Patents.
Mohan D, Pittman CU Jr (2007) Arsenic removal from water/wastewater using adsorbents—a
critical review. J Hazard Mater 142:1–53
Mohapatra D, Mishra D, Chaudhury GR, Das RP (2007) Arsenic adsorption mechanism on clay
minerals and its dependence on temperature. Korean J Chem Eng 24:426–430
Mohmood I, Lopes CB, Lopes I, Ahmad I, Duarte AC, Pereira E (2013) Nanoscale materials and
their use in water contaminants removal—a review. Environ Sci Pollut Res 20:1239–1260
190
T. S. Sakthivel et al.
American waters for human consumption. Environ Pollut 158:1105–1118
Liu YY, Leus K, Grzywa M, Weinberger D, Strubbe K, Vrielinck H, Van Deun R, Volkmer D, Van
Speybroeck V, Van Der Voort P (2012) Synthesis, structural characterization, and catalytic
performance of a vanadium-based metal–organic framework (COMOC-3). Eur J Inorg Chem
2012:2819–2827
Liu H, Zuo K, Vecitis CD (2014a) Titanium dioxide-coated carbon nanotube network filter for rapid
and effective arsenic sorption. Environ Sci Technol 48:13871–13879
Liu J, Chen L, Cui H, Zhang J, Zhang L, Su C-Y (2014b) Applications of metal–organic
frameworks in heterogeneous supramolecular catalysis. Chem Soc Rev 43:6011–6061
Logsdon GS, Kohne R, Abel S, LaBonde S (2002) Slow sand filtration for small water systems. J
Environ Eng Sci 1:339–348
Lorenzen L, Van Deventer J, Landi W (1995) Factors affecting the mechanism of the adsorption of
arsenic species on activated carbon. Miner Eng 8:557–569
Low JJ, Benin AI, Jakubczak P, Abrahamian JF, Faheem SA, Willis RR (2009) Virtual high
throughput screening confirmed experimentally: porous coordination polymer hydration. J
Am Chem Soc 131:15834–15842
Lu C, Liu C (2006) Removal of nickel (II) from aqueous solution by carbon nanotubes. J Chem
Technol Biotechnol 81:1932–1940
Luo X, Wang C, Luo S, Dong R, Tu X, Zeng G (2012) Adsorption of As (III) and As (V) from water
using magnetite Fe 3 O 4-reduced graphite oxide–MnO 2 nanocomposites. Chem Eng J
187:45–52
Luo XB, Wang CC, Wang LC, Deng F, Luo SL, Tu XM, Au CT (2013) Nanocomposites of
graphene oxide-hydrated zirconium oxide for simultaneous removal of As(III) and As(V) from
water. Chem Eng J 220:98–106. https://doi.org/10.1016/j.cej.2013.01.017
Mandal S, Sahu MK, Patel RK (2013) Adsorption studies of arsenic (III) removal from water by
zirconium polyacrylamide hybrid material (ZrPACM-43). Water Resour Ind 4:51–67
Marcovecchio JE, Botté SE, Freije RH (2007) Heavy metals, major metals, trace elements. Handb
Water Anal 2:275–311
Margat J, Van der Gun J (2013) Groundwater around the world: a geographic synopsis. CRC Press,
Boca Raton/London/New York
Martinson CA, Reddy K (2009) Adsorption of arsenic (III) and arsenic (V) by cupric oxide
nanoparticles. J Colloid Interface Sci 336:406–411
Mayo J, Yavuz C, Yean S, Cong L, Shipley H, Yu W, Falkner J, Kan A, Tomson M, Colvin V
(2007) The effect of nanocrystalline magnetite size on arsenic removal. Sci Technol Adv Mater
8:71
McMurry J, Fay R (2004) In: Hamann KP (ed) Hydrogen, oxygen and water, McMurry Fay
Chemistry, 4th edn. Pearson Education, Upper Saddle River, pp 575–599
Melia O, Coagulation C (1972) In: Weber WJ Jr (ed) Floccula-tion. Physicochemical processes for
water quality control. Wiley Interscience, New York
Mendie U (2005) The nature of water. In: The theory and practice of clean water production for
domestic and industrial use, vol 1. Lacto-Medals Publishers, Lagos, p 21
Mishra AK, Ramaprabhu S (2010) Magnetite decorated multiwalled carbon nanotube based
supercapacitor for arsenic removal and desalination of seawater. J Phys Chem C
114:2583–2590. https://doi.org/10.1021/jp911631w
Misra, M. & Lenz, P. (2008). Removal of arsenic from drinking and process water: Google Patents.
Mohan D, Pittman CU Jr (2007) Arsenic removal from water/wastewater using adsorbents—a
critical review. J Hazard Mater 142:1–53
Mohapatra D, Mishra D, Chaudhury GR, Das RP (2007) Arsenic adsorption mechanism on clay
minerals and its dependence on temperature. Korean J Chem Eng 24:426–430
Mohmood I, Lopes CB, Lopes I, Ahmad I, Duarte AC, Pereira E (2013) Nanoscale materials and
their use in water contaminants removal—a review. Environ Sci Pollut Res 20:1239–1260
190
T. S. Sakthivel et al.
