Page 665 - Polymer-based Nanocomposites for Energy and Environmental Applications
P. 665
Recent advances in polyaniline-based nanocomposites as potential adsorbents for trace metal ions 611
[6] Lee C-H, Shie J-L, Yang Y-T, Chang C-Y. Photoelectrochemical characteristics,
photodegradation and kinetics of metal and non-metal elements co-doped photocatalyst
for pollution removal. Chem Eng J 2016;303:477–88.
[7] Abejo ´n A, Garea A, Irabien A. Arsenic removal from drinking water by reverse osmosis:
minimization of costs and energy consumption. Sep Purif Technol 2015;144:46–53.
¸
[8] Molaei A, K€ okkılıc O, Waters KE. An investigation into predispersed solvent extraction of
nickel (II) ions from dilute aqueous solutions. Sep Purif Technol 2017;174:396–407.
[9] Islam A, Ahmad A, Laskar MA. Flame atomic absorption spectrometric determination of
trace metal ions in environmental and biological samples after preconcentration on a new
chelating resin containing p-aminobenzene sulfonic acid. J AOAC Int 2015;98:165–75.
[10] Ahmad A, Khatoon A, Laskar MA, Islam A, Mohammed AW, Yong NL. Use of
2-hydroxy-3-methoxybenzaldehyde functionalized amberlite XAD-16 for
preconcentration and determination of trace metal ions by flame atomic absorption spec-
trometry. Der Pharma Chem 2013;5:12–23.
[11] Charles J, Bradu C, Morin-Crini N, Sancey B, Winterton P, Torri G, et al. Pollutant
removal from industrial discharge water using individual and combined effects of adsorp-
tion and ion-exchange processes: chemical abatement. J Saudi Chem Soc 2016;20:185–94.
[12] Kumar P, Pournara A, Kim K-H, Bansal V, Rapti S, Manos MJ. Metal-organic frame-
works: challenges and opportunities for ion-exchange/sorption applications. Prog Mater
Sci 2017;86:25–74.
[13] Ge H, Wang J. Ear-like poly (acrylic acid)-activated carbon nanocomposite: a highly effi-
cient adsorbent for removal of Cd(II) from aqueous solutions. Chemosphere
2017;169:443–9.
[14] Anbia M, Kargosha K, Khoshbooei S. Heavy metal ions removal from aqueous media by
modified magnetic mesoporous silica MCM-48. Chem Eng Res Des 2015;93:779–88.
[15] Ahmad A, Khatoon A, Mohd-Setapar SH, Kumar R, Rafatullah M. Chemically oxidized
pineapple fruit peel for the biosorption of heavy metals from aqueous solutions. Desalin
Water Treat 2016;57:6432–42.
[16] Kashif Uddin M. A review on the adsorption of heavy metals by clay minerals, with special
focus on the past decade. Chem Eng J 2017;308:438–62.
[17] Islam A, Laskar MA, Ahmad A. Characterization of a novel chelating resin of enhanced
hydrophilicity and its analytical utility for preconcentration of trace metal ions. Talanta
2010;81:1772–80.
[18] Islam A, Laskar MA, Ahmad A. Preconcentration of metal ions through chelation on a
newly synthesized resin containing O, O donor atoms for quantitative analysis of environ-
mental and biological samples. Environ Monit Assess 2013;185:2691–704.
[19] Habiba U, Afifi AM, Salleh A, Ang BC. Chitosan/(polyvinyl alcohol)/zeolite electrospun
2+
6+
composite nanofibrous membrane for adsorption of Cr ,Fe 3+ and Ni . J Hazard Mater
2017;322:182–94.
[20] Ansari MO, Khan MM, Ansari SA, Amal I, Lee J, Cho MH. Enhanced thermoelectric per-
formance and ammonia sensing properties of sulfonated polyaniline/graphene thin films.
Mater Lett 2014;114:159–62.
[21] Kumar R, Ansari MO, Barakat MA. DBSA doped polyaniline/multi-walled carbon nan-
otubes composite for high efficiency removal of Cr (VI) from aqueous solution. Chem Eng
J 2013;228:748–55.
[22] Insuwana W, Jungsuttiwong S, Rangsriwatananon K. Host-guest composite materials of
dyes loaded zeolite LTL for antenna applications. J Lumin 2015;161:31–6.
[23] Dong H, Zhang C, Zhao YS. Host–guest composite organic microlasers. J Mater Chem C
2017; https://doi.org/10.1039/c6tc05474a.

