References
- I. Lee, J.A. Park, J.H. Kim, J.K. Kang, C.G Lee, S.B. Kim,
Functionalization of activated carbon fiber through iron
oxide impregnation for As(V) removal: equilibrium, kinetic,
and thermodynamic analyses, Desal. Wat. Treat., 57 (2016)
10757–10766.
- K.S.M. Abdul, S.S. Jayasinghe, E.P.S. Chandana, C. Jayasumana,
P.M.C.S. De Silva, Arsenic and human health effects: a review,
Environ. Toxicol. Pharm., 40 (2015) 828–846.
- B. An, H. Kim, C. Park, S. H. Lee, J. W. Choi, Preparation and
characterization of an organic/inorganic hybrid sorbent (PLE)
to enhance selectivity for As(V), J. Hazard. Mater., 289 (2015)
54–62.
- C. Wang, H. Luo, Z. Zhang, Y. Wu, J. Zhang, S. Chen, Removal
of As(III) and As(V) from aqueous solutions using nanoscale
zero valent iron-reduced graphite oxide modified composites,
J. Hazard. Mater., 268 (2014) 124–131.
- S. Dixit, J.G. Hering, Comparison of arsenic(V) and arsenic(III)
sorption onto iron oxide minerals: implications for arsenic
mobility, Environ. Sci. Technol., 37 (2003) 4182–4189.
- S. Bang, X. Meng, A review of arsenic interactions with anions
and iron hydroxides, Environ. Eng. Res., 9 (2004) 184–192.
- J. Giménez, M. Martínez, J. de Pablo, M. Rovira, L. Duro, Arsenic
sorption onto natural hematite, magnetite, and goethite, J.
Hazard. Mater., 141 (2007) 575–580.
- E.G. Kosandrovich, V.S. Soldatov, Fibrous Ion Exchangers,
I.M. Luqman, Eds., Ion Exchange Technology I: Theory and
Materials, Springer Netherlands, Dordrecht, 2012, pp. 299–371.
- L.L. Horng, D. Clifford, The behavior of polyprotic anions in
ion-exchange resins, React. Funct. Polym., 35 (1997) 41–54.
- J. Kim, M.M. Benjamin, Modeling a novel ion exchange process
for arsenic and nitrate removal, Water Res., 38 (2004) 2053–2062.
- T.S. Anirudhan, M.R. Unnithan, Arsenic(V) removal from
aqueous solutions using an anion exchanger derived from
coconut coir pith and its recovery, Chemosphere, 66 (2007)
60–66.
- M.R. Awual, A. Jyo, Rapid column-mode removal of arsenate
from water by crosslinked poly(allylamine) resin, Water Res.,
43 (2009) 1229–1236.
- T.S. Anirudhan, S. Jalajamony, Cellulose-based anion
exchanger with tertiary amine functionality for the extraction
of arsenic(V) from aqueous media, J. Environ. Manage., 91
(2010) 2201–2207.
- M. Kukučka, N. Kukučka, M. Vojinović-Miloradov, Ž. Tomić,
M. Šiljeg, Effect of extremely high specific flow rates on the
removal of NOM and arsenic from groundwater with an
ion-exchange resin: a pilot-scale study in Northern Serbia, J.
Environ. Sci. Health. A., 46 (2011) 952–959.
- M.R. Awual, M.A. Hossain, M.A. Shenashen, T. Yaita, S. Suzuki,
A. Jyo, Evaluating of arsenic(V) removal from water by weakbase
anion exchange adsorbents, Environ. Sci. Pollut. Res., 20
(2013) 421–430.
- J. Jachula, Z. Hubicki, Removal of Cr(VI) and As(V) from
aqueous solutions by polyacrylate and polystyrene anion
exchange resins, Appl. Water Sci., 3 (2013) 653–664.
- A. Chiavola, R. Baciocchi, E. D’Amato, Application of a twosite
ideal model for the prediction of As–SO4–Cl ion exchange
equilibria, Water Air Soil Pollut., 225 (2014) 1810–1822.
- L. Ruixia, G. Jinlong, T. Hongxiao, Adsorption of fluoride,
phosphate, and arsenate ions on a new type of ion exchange
fiber, J. Colloid Interf. Sci., 248 (2002) 268–274.
- L. Dominguez, J. Economy, K. Benak, C.L. Mangun, Anion
exchange fibers for arsenate removal derived from a vinylbenzyl
chloride precursor, Polym. Adv. Technol., 14 (2003) 632–637.
- M.R. Awual, S. Urata, A. Jyo, M. Tamada, A. Katakai, Arsenate
removal from water by a weak-base anion exchange fibrous
adsorbent, Water Res., 42 (2008) 689–696.
- C. Kavaklı, P. A. Kavaklı, B.D. Turan, A. Hamurcu, O. Güven,
Quaternized dimethylaminoethyl methacrylate strong base
anion exchange fibers for As(V) adsorption, Radiat. Phys.
Chem., 102 (2014) 84–95.
- O.M. Vatutsina, V.S. Soldatov, V.I. Sokolova, J. Johann, M.
Bissen, A. Weissenbacher, A new hybrid (polymer/inorganic)
fibrous sorbent for arsenic removal from drinking water, React.
Funct. Polym., 67 (2007) 184–201.
- R.C. Smith, J. Li, S. Padungthon, A.K. Sengupta, Nexus between
polymer support and metal oxide nanoparticles in hybrid
nanosorbent materials (HNMs) for sorption/desorption of
target ligands, Front. Environ. Sci. Eng., 9 (2015) 929–938.
- P.V. Nesteronok, V.S. Soldatov, Acid–base properties of ion
exchangers: V. Synthesis and properties of ion exchangers on
the base of modacrylic polyacrylonitrile–vinylchloride fibers,
React. Funct. Polym., 71 (2011) 1033–1039.
- C.G. Lee, J.A. Park, J.W. Choi, S.O. Ko, S.H. Lee, Removal and
recovery of Cr(VI) from industrial wastewater using fibrous
anion exchanger, Water Air Soil Pollut., 227 (2016) 287–297.
- V. Neagu, S. Mikhalovsky, Removal of hexavalent chromium by
new quaternized crosslinked poly(4-vinylpyridines), J. Hazard.
Mater., 183 (2010) 533–540.
- G. Li, J. Xiao, W. Zhang, Efficient and reusable aminefunctionalized
polyacrylonitrile fiber catalysts for Knoevenagel
condensation in water, Green Chem., 14 (2012) 2234–2242.
- M. Koyama, T. Tsujizaki, S. Sakamuram, New amides from
buckwheat seeds (Fagopyrum esculentum Moench), Agric. Biol.
Chem., 37 (1973) 2749–2753.
- Y. Turhan, M. Dogan, M. Alkan, Poly(vinyl chloride)/kaolinite
nanocomposites: characterization and thermal and optical
properties, Ind. Eng. Chem. Res., 49 (2010) 1503–1513.
- S.M. Ashraf, A Laboratory Manual of Polymers, IK International
Publishing House Pvt. Ltd., India, New Delhi.
- P. Lakshmipathiraj, B.R.V. Narasimhan, S. Prabhakar, G.B.
Raju, Adsorption studies of arsenic on Mn-substituted iron
oxyhydroxide, J. Colloid Interf. Sci., 304 (2006) 317–322.
- B. An, T.R. Steinwinder, D. Zhao, Selective removal of arsenate
from drinking water using a polymeric ligand exchanger, Water
Res., 39 (2005) 4993–5004.
- S.S. Gupta, K.G. Bhattacharyya, Kinetics of adsorption of metal
ions on inorganic materials: a review, Adv. Colloid Interf. Sci.,
162 (2011) 39–58.
- K.Y. Foo, B.H. Hameed, Insights into the modeling of adsorption
isotherm systems, Chem. Eng. J., 156 (2010) 2–10.
- S. Padungthon, M. German, S. Wiriyathamcharoen, A.K.
SenGupta, Polymeric anion exchanger supported hydrated
Zr(IV) oxide nanoparticles: a reusable hybrid sorbent for selective
trace arsenic removal, React. Funct. Polym., 93 (2015) 84–94.
- T.S. Anirudhan, J. Nima, S. Sandeep, V.R.N. Ratheesh,
Development of an amino functionalized glycidylmethacrylategrafted-titanium dioxide densified cellulose for the adsorptive
removal of arsenic(V) from aqueous solutions, Chem. Eng. J.,
209 (2012) 362–371.
- P.M. Styles, M. Chanda, G.L. Rempel, Sorption of arsenic anions
onto poly(ethylene mercaptoacetimide), React. Funct. Polym.,
31 (1996) 89–102.
- H. Ma, Z. Zhu, L. Dong, Y. Qiu, J. Zhao, Removal of arsenate
from aqueous solution by manganese and iron (hydr)oxides
coated resin, Sep. Sci. Technol., 46 (2011) 130–136.
- L. Zhao, J. Sun, Y. Zhao, L. Xu, M. Zhai, Removal of hazardous
metal ions from wastewater by radiation synthesized silicagraft-
dimethylaminoethyl methacrylate adsorbent, Chem. Eng.
J., 170 (2011) 162–169.
- H.T. Fan, T. Sun, H.B. Xu, Y.J. Yang, Q. Tang, Y. Sun,
Removal of arsenic(V) from aqueous solutions using
3-[2-(2-aminoethylamino) ethylaminopropyl-trimethoxysilane
functionalized silica gel adsorbent, Desalination, 278 (2011)
238–243.