Page 594 - Polymer-based Nanocomposites for Energy and Environmental Applications
P. 594
Hybrid materials based on polymer nanocomposites for environmental applications 547
[63] Alvi F, Ram MK, Gomez H, Joshi RK, Kumar A. Evaluating the chemio-physio prop-
erties of novel zinc oxide-polyaniline nanocomposite polymer films. Polym J
2010;42:935–40.
[64] Sun L, Shi Y, He Z, Li B, Liu J. Synthesis and characterization of SnO 2 /polyaniline
nanocomposites by sol-gel technique and microemulsion polymerization. Synth Met
2012;162:2183–7.
[65] Sun L, Shi Y, Li B, Chu L, He Z, Liu J. Synthesis and characterization of polypyrrole/Au
nanocomposites by microemulsion polymerization. Colloids Surf A Physicochem Eng
Asp 2012;397:8–11.
[66] Ansari MO, Khan MM, Ansari SA, Lee J, Cho MH. Enhanced thermoelectric behaviour
and visible light activity of Ag@TiO 2 /polyaniline nanocomposite synthesized by
biogenic-chemical route. RSC Adv 2014;4:23713–9.
[67] Ansari MO, Khan MM, Ansari SA, Cho MH. DC electrical conductivity retention and
electrical compensation of polyaniline by TiO 2 at higher loading percentages in
polyaniline@TiO 2 nanocomposites. Electron Mater Lett 2015;11:559–64.
[68] Ansari MO, Khan MM, Ansari SA, Cho MH. Electrically conductive polyaniline sensi-
tized defective-TiO 2 for improved visible light photocatalytic and photoelectrochemical
performance: a synergistic effect. New J Chem 2015;39:8381–8.
[69] Patil SS, Harpale KV, Koiry SP, Patil KR, Aswal DK, More MA. Multifunctional
polyaniline-tin oxide (PANI-SnO 2 ) nanocomposite: synthesis, electrochemical, and field
emission investigations. J Appl Polym Sci 2015;132:41401.
[70] Vinoth R, Babu SG, Bharti V, Gupta V, Navaneethan M, Bhat SV, et al. Ruthenium based
metallopolymer grafted reduced graphene oxide as a new hybrid solar light harvester in
polymer solar cells. Sci Rep 2017;7:43133.
[71] Ansari MO, Khan MM, Ansari SA, Amal I, Lee J, Cho MH. pTSA doped conducting
graphene/polyaniline nanocomposite fibers: Thermoelectric behavior and electrode anal-
ysis. Chem Eng J 2014;242:155–61.
[72] Wang G, Zhuo S, Xing W. Graphene/polyaniline nanocomposite as counter electrode of
dye-sensitized solar cells. Mater Lett 2012;69:27–9.
[73] Lim SP, Pandikumar A, Lim YS, Huang NM, Lim HN. In-situ electrochemically deposited
polypyrrole nanoparticles incorporated reduced graphene oxide as an efficient counter
electrode for platinum-free dye-sensitized solar cells. Sci Rep 2014;4:5303.
[74] Ramasamy MS, Nikolakapoulou A, Raptis D, Dracopoulos V, Paterakis G, Lianos P.
Reduced graphene oxide/Polypyrrole/PEDOT composite films as efficient Pt-free counter
electrode for dye-sensitized solar cells. Electrochim Acta 2015;173:276–81.
[75] Wang HY, Wang FM, Wang YY, Wan CC, Hwang BJ, Santhanam R, et al. Electrochem-
ical formation of Pt nanoparticles on multiwalled carbon nanotubes: useful for fabricating
electrodes for use in dye-sensitized solar cells. J Phys Chem C 2011;115:8439–46.
[76] Yagci Y, Sangermano M, Rizza G. A visible light photochemical route to silver-epoxy
nanocomposites by simultaneous polymerization-reduction approach. Polymer
2008;49:5195–8.
[77] Petronella F, Truppi A, Ingrosso C, Placido T, Striccoli M, Curri ML, et al. Nanocomposite
materials for photocatalytic degradation of pollutants. Catal Today 2017;281:85–100.
[78] Kubacka A, Fernandez-Garcı ´a M, Colon G. Advanced nano-architectures for solar photo-
catalytic applications. Chem Rev 2012;112:1555–614.
[79] Singh S, Mahalingam H, Singh PK. Polymer-supported titanium dioxide photocatalysts
for environmental remediation: a review. Appl Catal A Gen 2013;462–463:178–95.
[80] Park J. Visible and near infrared light active photocatalysis based on conjugated polymers.
J Ind Eng Chem 2017;51:27–43.

