Page 229 - Polymer-based Nanocomposites for Energy and Environmental Applications
P. 229
Polymer-based nanocomposites for energy and environmental applications 201
[109] Joshi S. Can nanotechnology improve the sustainability of biobased products? J Ind Ecol
2008;12:474–89.
[110] Singh R, Ray SS. Bionanohybrid based on bioplastic and surface-functionalized carbon
nanotubes. J Nanosci Nanotechnol 2010;10:7976–80.
[111] Ray SS, Bousmina M. Biodegradable polymers and their layered silicate
nanocomposites: in greening the 21st century materials world. Prog Mater Sci
2005;50:962–1079.
[112] Mills A, Hunte SL. An overview of semiconductor photocatalysis. J Photochem Photo-
biol A Chem 1997;108:1.
[113] Fu H, Jing L, Qu Y, Wang B, Li S, Jiang B, et al. Review of photoluminescence perfor-
mance of nano-sized semiconductor materials and its relationships with photocatalytic
activity. Sol Energy Mater Sol Cells 2006;90:1773–87.
[114] Konstantinou IK, Albanis TA. TiO 2 -assisted photocatalytic degradation of azo dyes in
aqueous solution: kinetic and mechanistic investigations: a review. Appl Catal Environ
2004;49:1–14.
[115] Iketania K, Sun RD, Toki M, Hirota K, Yamaguchi O. Sol-gel-derived TiO 2 /poly
(dimethylsiloxane) hybrid films and their photocatalytic activities. J Phys Chem Solid
2003;64:507–13.
[116] Xu X, Wang Q, Choi HC. Encapsulation of iron nanoparticles with PVP nanofibrous
membranes to maintain their catalytic activity. J Membr Sci 2010;348:231–7.
[117] Naskar S, Pillay SA, Chanda M. Photocatalytic degradation of organic dyes in aqueous
solution with TiO 2 nanoparticles immobilized on foamed polyethylene sheet.
J Photochem Photobiol A Chem 1998;113:257–64.
[118] Tennakone K, Kottegoda IRM. Photocatalytic mineralization of paraquat dissolved in
water by TiO 2 supported on polythene and polypropylene films. J Photochem Photobiol
A Chem 1996;93:79–81.
[119] Wang D, Zhang J, Luo Q, Li XY, Duan Y, An J. Characterization and photocatalytic
activity of poly(3-hexylthiophene)-modified TiO 2 for degradation of methyl orange
under visible light. J Hazard Mater 2009;169:546–50.
[120] Uchida H, Katoh S. Photocatalytic degradation of trichlorobenzene using immobilized
TiO 2 films containing poly(tetrafluoroethylene) and platinum metal catalyst. Elec-
trochim Acta 1998;43:2111–6.
[121] Chen KT, Lu CS, Chang TH, Lai YY, Chang TH, Wu CW, et al. Comparison of photo-
degradative efficiencies and mechanisms of Victoria Blue R assisted by Nafion-coated
and fluorinated TiO 2 photocatalysts. J Hazard Mater 2010;174:598–609.
[122] Lin Y, Li D, Hu J, Xiao G, Wang J, Li W, et al. Highly efficient photocatalytic degra-
dation of organic pollutants by PANI-modified TiO 2 composite. J Phys Chem C
2012;116:5764–72. Reprinted from Lin Y, Li D, Hu J, Xiao G, Wang J, Li W, Fu X.
J Phys Chem C 2012; 116:5764–72, Copyright (2017), American Chemical Society.
[123] Ameen S, Akhtar MS, Kim YS, Shin HS. Nanocomposites of poly(1-naphthylamine)/
SiO 2 and poly(1-naphthylamine)/TiO 2 : comparative photocatalytic activity evaluation
towards methylene blue dye. Appl Catal Environ 2011;103:136–42.
[124] Zhang H, Zong R, Zhu Y. Photocorrosion inhibition and photoactivity enhancement for
zinc oxide via hybridization with monolayer polyaniline. J Phys Chem C
2009;113:4605–11.
[125] G€ ulce H, Eskizeybek V, Haspulat B, Sarı F, G€ ulce A, Avci A. Preparation of a new poly-
aniline/CdO nanocomposite and investigation of its photocatalytic activity: comparative
study under UV light and natural sunlight irradiation. Ind Eng Chem Res 2013;
52:10924–34.