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614 Polymer-based Nanocomposites for Energy and Environmental Applications
[62] Javadian H. Application of kinetic, isotherm and thermodynamic models for the adsorp-
tion of Co(II) ions on polyaniline/polypyrrole copolymer nanofibers from aqueous solu-
tion. J Ind Eng Chem 2014;20:4233–41.
[63] Moosavian MA, Moazezi N. Removal of cadmium and zinc ions from industrial waste-
water using nanocomposites of PANI/ZnO and PANI/CoHCF: a comparative study. Des-
alin Water Treat 2016;57:20817–36.
[64] Yavuz AG, Dincturk-Atalay E, Uygun A, Gode F, Aslan E. A comparison study of adsorp-
tion of Cr(VI) from aqueous solutions onto alkyl-substituted polyaniline/chitosan compos-
ites. Desalination 2011;279:325–31.
[65] Javadian H, Ghaemy M, Taghavi M. Adsorption kinetics, isotherm, and thermodynamics
of Hg 2+ to polyaniline/hexagonal mesoporous silica nanocomposite in water/wastewater.
J Mater Sci 2014;49:232–42.
[66] Lu H, Xu H, Chen Y, Zhang J, Zhuang J. ZVI/PANI/ATP composite by static polymer-
ization as adsorbent for removal of Cr(VI). RSC Adv 2014;4:5873–9.
[67] Wang J, Zhang K, Zhao L. Sono-assisted synthesis of nanostructured polyaniline for
adsorption of aqueous Cr(VI): effect of protonic acids. Chem Eng J 2014;239:123–31.
[68] Alcaraz-Espinoza JJ, Cha vez-Guajardo AE, Medina-Llamas JC, Andrade CAS, de
Melo CP. Hierarchical composite polyaniline-(electrospun polystyrene) fibers applied
to heavy metal remediation. ACS Appl Mater Interfaces 2015;7:7231–40.
[69] Li Q, Sun L, Zhang Y, Qian Y, Zhai J. Characteristics of equilibrium, kinetics studies for
adsorption of Hg(II) and Cr(VI) by polyaniline/humic acid composite. Desalination
2011;266:188–94.
[70] Bhaumika M, Maityb A, Srinivasuc VV, Onyango MS. Removal of hexavalent chromium
from aqueous solution using polypyrrole-polyaniline nanofibers. Chem Eng J 2012;
181–182:323–33.
[71] Fang X, Xu X, Wang S, Wang D. Adsorption kinetics and equilibrium of Cu(II) from aque-
ous solution by polyaniline/coconut shell-activated carbon composites. J Environ Eng
2013;139:1279–84.
[72] Bhaumik M, Noubactep C, Gupta VK, McCrindle RI, Maity A. Polyaniline/Fe0 composite
nanofibers: an excellent adsorbent for the removal of arsenic from aqueous solutions.
Chem Eng J 2015;271:135–46.
[73] Samani MR, Borghei SM, Olad A, Chaichi MJ. Removal of chromium from aqueous solu-
tion using polyaniline-poly ethylene glycol composite. J Hazard Mater 2010;184:248–54.
[74] Al-Thani NJ, Bhadra J, Abdulmalik D, Al-Qaradawi I, Alashraf A, Madi NK. Positron
annihilation study on polyaniline nanocomposite used for Pb(II) ion removal. Desalin
Water Treat 2016;57:27374–85.
[75] Javadian H, Sorkhrodi FZ, Koutenaei BB. Experimental investigation on enhancing
aqueous cadmium removal via nanostructure composite of modified hexagonal type
mesoporous silica with polyaniline/polypyrrole nanoparticles. J Ind Eng Chem
2014;20:3678–88.
[76] Gowarda GR, Leroux F, Nazar LF. Poly(pyrrole) and poly(thiophene)/vanadium oxide
interleaved nanocomposites: positive electrodes for lithium batteries. Electrochim Acta
1998;43:1307–13.
[77] Singh P, Rawat JP, Rehman N. Synthesis, characterization and ion exchange properties of
a new inorganic ion exchange materials: zirconium(IV) iodooxalate. Indian J Chem A
2002;41:1616–8.
[78] Sharma G, Pathania D, Naushad M, Kothiyal NC. Fabrication, characterization and anti-
microbial activity of polyaniline Th(IV) tungstomolybdophosphate nanocomposite mate-
rial: efficient removal of toxic metal ions from water. Chem Eng J 2014;251:413–21.

