[1] KAMAT P V, TVRDY K, BAKER D R, et al. Beyond photovoltaics: semiconductor nanoarchitectures for liquidjunction solar cells[J]. Chemical Reviews,2010,110(11):6664-6688.
[2] KANG S H, CHOI S H, KANG M S, et al. Nanorodbased dyesensitized solar cells with improved charge collection efficiency[J]. Advanced Materials,2008,20(1):54-58.
[3] GARNEET E C, YANG P. Silicon nanowire radial pn junction solar cells[J]. Journal of the American Chemical Society,2008,130(29):9224-9225.
[4] LEE Y, CHI C, LIAU S. CdS/CdSe CoSensitized TiO2 photoelectrode for efficient hydrogen generation in a photoelectrochemical cell[J]. Chemistry of Materials,2009,22(3):922-927.
[5] YANG L, LUO S, LIU R, et al. Fabrication of CdSe nanoparticles sensitized long TiO2 nanotube arrays for photocatalytic degradation of anthracene9carbonxylic acid under green monochromatic light[J]. The Journal of Physical Chemistry C,2010,114(11):4783-4789.
[6] LEE H, LEVENTIS H C, MOON S J, et al. PbS and CdS quantum dotsensitized solidstate solar cells:“old concepts, new results”[J]. Advanced Functional Materials,2009,19(17):2735-2742.
[7] KUMAR P N, DEEPA M, SRIVASTAVA A K. Ag plasmonic nanostructures and a novel gel electrolyte in a high efficiency TiO2/CdS solar cell[J]. Physical Chemistry Chemical Physics,2015,17(15):10040-10052.
[8] WANG H, YOU T, SHI W, et al. Au/TiO2/Au as a plasmonic coupling photocatalyst[J]. The Journal of Physical Chemistry C,2012,116(10):6490-6494.
[9] KUMAR P N, NARAYANAN R, DEEPA M, et al. Au@poly(acrylic acid) plasmons and C 60 improve the light harvesting capability of a TiO2/CdS/CdSeS photoanode[J]. Journal of Materials Chemistry A,2014,2(25):9771-9783.[10] XIE H, LARMOUR I A, SMITH W E, et al. Surfaceenhanced Raman scattering investigation of hollow gold nanospheres[J]. The Journal of Physical Chemistry C,2012,116(14):8338-8342.
[11] MAHMOUD M A, QIAN W, ELSAYED M A. Following charge separation on the nanoscale in Cu 2O Au nanoframe hollow nanoparticles[J]. Nano Letters,2011,11(8):3285-3289.