Page 266 - Polymer-based Nanocomposites for Energy and Environmental Applications
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238 Polymer-based Nanocomposites for Energy and Environmental Applications
[40] Lochan RC, Head-Gordon M. Computational studies of molecular hydrogen binding affin-
ities: the role of dispersion forces, electrostatics, and orbital interactions. Phys Chem
Chem Phys 2006;8:1357–70.
[41] Qiu Y, Yu J, Fang G, Shi H, Zhou X, Bai X. Synthesis of carbon/carbon core/shell nan-
otubes with a high specific surface area. J Phys Chem C 2009;113:61–8.
[42] Yu S, Liu D, Zhao S, Bao B, Jin C, Huang W, et al. Synthesis of wood derived nitrogen-
doped porous carbon–polyaniline composites for supercapacitor electrode materials. RSC
Adv 2015;5:30943–9.
[43] Chen Y, Zhu H, Liu Y. Preparation of activated rectangular PANI-based carbon tubes and
their application in hydrogen adsorption. Int J Hydrog Energy 2011;36:11738–45.
[44] Chen Y, Cao X, Zhu H, Liu Y. Preparation of a porous carbon from ferrocene-loaded
PANI and its use in hydrogen adsorption. Int J Hydrog Energy 2012;37:7629–37.
[45] Moniruzzaman M, Winey KI. Polymer nanocomposites containing carbon nanotubes.
Macromolecules 2006;39:5194–205.
[46] Sun X, Wang JY, Shi S. Hydrogen storage in mesoporous metal oxides with catalyst and
external electric field. J Phys Chem C 2010;114:7178–84.
[47] Li B, Huang X, Gong R, Ma M, Yang X, Liang L, et al. Catalyzed hydrogen spillover for
hydrogen storage on microporous organic polymers. Int J Hydrog Energy
2012;37:12813–20.
[48] Gallon BJ, Kojima RW, Kaner RB, Diaconescu PL. Palladium nanoparticles supported on
PANI nanofibers as a semi-heterogeneous catalyst in water. Angew Chem Int Ed
2007;46:7251–4.
[49] Athawale AA, Bhagwat SV, Katre PP. Nanocomposite of Pd-PANI as a selective meth-
anol sensor. Sensors Actuators B Chem 2006;114:263–7.
[50] Skowronski JM, Urbaniak J. Nickel foam/PANI-based carbon/palladium composite elec-
trodes for hydrogen storage. Energy Convers Manag 2008;49:2455–60.
[51] Thomas KM. Hydrogen adsorption and storage on porous materials. Catal Today
2007;120:389–98.
[52] Panella B, Hirscher M, Roth S. Hydrogen adsorption in different carbon nanostructures.
Carbon 2005;43:2209–14.
[53] Hirscher M, Becher M, Haluska M, Quintel A, Skakalova V, Choi YM, et al. Hydrogen
storage in carbon nanostructures. J Alloys Compd 2002;330:654–8.
[54] Z€ uttel A, N€ utzenadel C, Sudan P, Mauron P, Emmenegger C, Rentsch S, et al. Hydrogen
sorption by carbon nanotubes and other carbon nanostructures. J Alloys Compd
2002;330:676–82.
[55] Takagi H, Hatori H, Soneda Y, Yoshizawa N, Yamada Y. Adsorptive hydrogen storage in
carbon and porous materials. Mater Sci Eng B 2004;108:143–7.
[56] June S, Choo K, Pyo D, Won J. H 2 sorption in HCl-treated PANI and polypyrrole. Catal
Today 2007;120:336–40.
[57] Attia NF, Menemparabath MM, Arepalli S, Geckeler KE. Inorganic nanotube composites
based on PANI: potential room-temperature hydrogen storage materials. Int J Hydrog
Energy 2013;38:9251–62.
[58] Kim BH, Hong WG, Lee SM, Yun YJ, HY Y, SY O, et al. Enhancement of hydrogen stor-
age capacity in PANI-vanadium pentoxide nanocomposites. Int J Hydrog Energy
2010;35:1300–4.
¸
[59] Karatepe N, Yuca N, Senkal BF. Synthesis of carbon-based nano materials for hydrogen
storage. Fullerenes Nanotubes Carbon Nanostruct 2013;21:31–46.