Lin YF, Chen JL, Xu CY, Chung TW (2014) One-pot synthesis of paramagnetic iron(III) hydroxide
nanoplates and ferrimagnetic magnetite nanoparticles for the removal of arsenic ions. Chem Eng
J 250:409–415
Lo IMC, Surampalli R, Lai KCK (2007) Zero-valentiron reactive materials for hazardous waste and
inorganics removal. Zero-Valent Iron React Mater Hazard Waste Inorg Removal
Lockwood CL et al (2014) Mobilisation of arsenic from bauxite residue (red mud) affected soils:
effect of pH and redox conditions. Appl Geochem 51:268–277
Luo X, Wang C, Luo S, Dong R, Tu X, Zeng G (2012) Adsorption of As (III) and As (V) from water
using magnetite Fe3O4-reduced graphite oxide–MnO2 nanocomposites. Chem Eng J
187:45–52
Luo X et al (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
Malik AH, Khan ZM, Mahmood Q, Nasreen S, Bhatti ZA (2009) Perspectives of low cost arsenic
remediation of drinking water in Pakistan and other countries. J Hazard Mater 168(1):1–12
Meng X, Korfiatis GP, Christodoulatos C, Bang S (2001) Treatment of arsenic in Bangladesh well
water using a household co-precipitation and filtration system. Water Res 35(12):2805–2810
Morgada ME, Levy IK, Salomone V, Farías SS, López G, Litter MI (2009) Arsenic (V) removal
with nanoparticulate zerovalent iron: effect of UV light and humic acids. Catal Today 143
(3–4):261–268
Morris J et al (2007) Nanotechnology white paper. Environmental Protection Agency (EPA), U.S.,
2007. Sr. Policy Council Nanotechnology White Paper USEPA, Washington, DC, p 136
Mosaferi M, Nemati S, Khataee A, Nasseri S, Hashemi AA (2014) Removal of Arsenic (III, V)
from aqueous solution by nanoscale zero-valent iron stabilized with starch and carboxymethyl
cellulose. J Environ Health Sci Eng 12(1):74
N. Compounds (2001) Longevity of granular iron in groundwater treatment processes: solution
composition, pp 1–9
Naujokas MF et al (2013) The broad scope of health effects from chronic arsenic exposure: update
on a worldwide public health problem. Environ Health Perspect 121(3):295–302
Navarro O, González J, Júnez-Ferreira HE, Bautista CF, Cardona A (2017) Correlation of Arsenic
and Fluoride in the groundwater for human consumption in a semiarid region of Mexico. Proc
Eng 186:333–340
Ng JC, Wang J, Shraim A (2003) A global health problem caused by arsenic from natural sources.
Chemosphere 52(9):1353–1359
Nickson RT, McArthur JM, Ravenscroft P, Burgess WG, Ahmed KM (2000) Mechanism of arsenic
release to groundwater, Bangladesh and West Bengal. Appl Geochem 15(4):403–413
Ning R (2002) Arsenic removal by reverse osmosis. Desalination 143(3):237–241
Nordstrom DK (2002) Worldwide occurrences of arsenic in ground water. Science 296
(5576):2143–2145
Noubactep C, Caré S (2011) Designing laboratory metallic iron columns for better result comparability. J Hazard Mater 189(3):809–813
Nurmi JT et al (2005) Characterization and properties of metallic Iron nanoparticles: spectroscopy,
electrochemistry, and kinetics. Environ Sci Technol 39(5):1221–1230
Office of Water U.S. Environmental Protection Agency 2018 edition of the drinking water
standards and health advisories tables, EPA 822-F-18-001 Off., no. March, 2018
Oikawa N, Nakagawa Y, Nishimura K, Ueno T, Fujita T (1994) Quantitative structure-activity
studies of insect growth regulators X. Substituent effects on larvicidal activity of 1-tert-butyl-1(2-chlorobenzoyl)-2-(substituted benzoyl)hydrazines against Chilo suppressalis and design
synthesis of potent derivatives. Pestic Biochem Physiol 48(2):135–144
Olea RA, Raju NJ, Egozcue JJ, Pawlowsky-Glahn V, Singh S (2018) Advancements in
hydrochemistry mapping: methods and application to groundwater arsenic and iron
concentrations in Varanasi, Uttar Pradesh, India. Stoch Environ Res Risk Assess 32(1):241–259
Özlem Kocabaş-Atakli Z, Yürüm Y (2013) Synthesis and characterization of anatase nanoadsorbent
and application in removal of lead, copper and arsenic from water. Chem Eng J 225:625–635
54
A. Kumar et al.
nanoplates and ferrimagnetic magnetite nanoparticles for the removal of arsenic ions. Chem Eng
J 250:409–415
Lo IMC, Surampalli R, Lai KCK (2007) Zero-valentiron reactive materials for hazardous waste and
inorganics removal. Zero-Valent Iron React Mater Hazard Waste Inorg Removal
Lockwood CL et al (2014) Mobilisation of arsenic from bauxite residue (red mud) affected soils:
effect of pH and redox conditions. Appl Geochem 51:268–277
Luo X, Wang C, Luo S, Dong R, Tu X, Zeng G (2012) Adsorption of As (III) and As (V) from water
using magnetite Fe3O4-reduced graphite oxide–MnO2 nanocomposites. Chem Eng J
187:45–52
Luo X et al (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
Malik AH, Khan ZM, Mahmood Q, Nasreen S, Bhatti ZA (2009) Perspectives of low cost arsenic
remediation of drinking water in Pakistan and other countries. J Hazard Mater 168(1):1–12
Meng X, Korfiatis GP, Christodoulatos C, Bang S (2001) Treatment of arsenic in Bangladesh well
water using a household co-precipitation and filtration system. Water Res 35(12):2805–2810
Morgada ME, Levy IK, Salomone V, Farías SS, López G, Litter MI (2009) Arsenic (V) removal
with nanoparticulate zerovalent iron: effect of UV light and humic acids. Catal Today 143
(3–4):261–268
Morris J et al (2007) Nanotechnology white paper. Environmental Protection Agency (EPA), U.S.,
2007. Sr. Policy Council Nanotechnology White Paper USEPA, Washington, DC, p 136
Mosaferi M, Nemati S, Khataee A, Nasseri S, Hashemi AA (2014) Removal of Arsenic (III, V)
from aqueous solution by nanoscale zero-valent iron stabilized with starch and carboxymethyl
cellulose. J Environ Health Sci Eng 12(1):74
N. Compounds (2001) Longevity of granular iron in groundwater treatment processes: solution
composition, pp 1–9
Naujokas MF et al (2013) The broad scope of health effects from chronic arsenic exposure: update
on a worldwide public health problem. Environ Health Perspect 121(3):295–302
Navarro O, González J, Júnez-Ferreira HE, Bautista CF, Cardona A (2017) Correlation of Arsenic
and Fluoride in the groundwater for human consumption in a semiarid region of Mexico. Proc
Eng 186:333–340
Ng JC, Wang J, Shraim A (2003) A global health problem caused by arsenic from natural sources.
Chemosphere 52(9):1353–1359
Nickson RT, McArthur JM, Ravenscroft P, Burgess WG, Ahmed KM (2000) Mechanism of arsenic
release to groundwater, Bangladesh and West Bengal. Appl Geochem 15(4):403–413
Ning R (2002) Arsenic removal by reverse osmosis. Desalination 143(3):237–241
Nordstrom DK (2002) Worldwide occurrences of arsenic in ground water. Science 296
(5576):2143–2145
Noubactep C, Caré S (2011) Designing laboratory metallic iron columns for better result comparability. J Hazard Mater 189(3):809–813
Nurmi JT et al (2005) Characterization and properties of metallic Iron nanoparticles: spectroscopy,
electrochemistry, and kinetics. Environ Sci Technol 39(5):1221–1230
Office of Water U.S. Environmental Protection Agency 2018 edition of the drinking water
standards and health advisories tables, EPA 822-F-18-001 Off., no. March, 2018
Oikawa N, Nakagawa Y, Nishimura K, Ueno T, Fujita T (1994) Quantitative structure-activity
studies of insect growth regulators X. Substituent effects on larvicidal activity of 1-tert-butyl-1(2-chlorobenzoyl)-2-(substituted benzoyl)hydrazines against Chilo suppressalis and design
synthesis of potent derivatives. Pestic Biochem Physiol 48(2):135–144
Olea RA, Raju NJ, Egozcue JJ, Pawlowsky-Glahn V, Singh S (2018) Advancements in
hydrochemistry mapping: methods and application to groundwater arsenic and iron
concentrations in Varanasi, Uttar Pradesh, India. Stoch Environ Res Risk Assess 32(1):241–259
Özlem Kocabaş-Atakli Z, Yürüm Y (2013) Synthesis and characterization of anatase nanoadsorbent
and application in removal of lead, copper and arsenic from water. Chem Eng J 225:625–635
54
A. Kumar et al.
