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Metal-based semiconductor nanomaterials for thin-film solar cells 185
[83] M. Lv, et al., Optimized porous rutile TiO 2 nanorod arrays for enhancing the efficiency of
dye-sensitized solar cells, Energy Environ. Sci. 6 (2013) 1615–1622.
[84] W.Q. Wu, Y.F. Xu, H.S. Rao, C.Y. Su, D.B. Kuang, Trilayered photoanode of TiO 2
nanoparticles on a 1D–3D nanostructured TiO 2 -grown flexible Ti substrate for high-
efficiency (9.1%) dye-sensitized solar cells with unprecedentedly high photocurrent
density, J. Phys. Chem. C 118 (2014) 16426–16432.
[85] J. Li, et al., Nanotube-based hierarchical titanate microspheres: an improved anode struc-
ture for Li-ion batteries, Chem. Commun. 48 (2012) 389.
[86] L. Xiang, X. Zhao, J. Yin, B. Fan, Well-organized 3D urchin-like hierarchical TiO 2 micro-
spheres with high photocatalytic activity, J. Mater. Sci. 47 (2012) 1436–1445.
[87] Q.D. Truong, M. Kobayashi, H. Kato, M. Kakihana, Hydrothermal synthesis of hierar-
chical TiO 2 microspheres using a novel titanium complex coordinated by picolinic acid,
J. Ceram. Soc. Jpn. 119 (2011) 513–516.
[88] J. Yu, J. Zhang, A simple template-free approach to TiO 2 hollow spheres with enhanced
photocatalytic activity, Dalton Trans. 39 (2010) 5860–5867.
[89] D. Wu, et al., Monodisperse TiO 2 hierarchical hollow spheres assembled by nanospindles
for dye-sensitized solar cells, J. Mater. Chem. 22 (2012) 11665–11671.
[90] Y. Zhang, L. Wu, Q. Zeng, J. Zhi, An approach for controllable synthesis of different-
phase titanium dioxide nanocomposites with peroxotitanium complex as precursor,
J. Phys. Chem. C 112 (2008) 16457–16462.
[91] J. Liao, L. Shi, S. Yuan, Y. Zhao, J. Fang, Solvothermal synthesis of TiO 2 nanocrystal
colloids from peroxotitanate complex solution and their photocatalytic activities, J. Phys.
Chem. C 113 (2009) 18778–18783.
[92] N. Murakami, K. Yu, T. Tsubota, T. Ohno, Shape-controlled anatase titanium(IV) oxide
particles prepared by hydrothermal treatment of peroxo titanic acid in the presence of
polyvinyl alcohol, J. Phys. Chem. C 113 (2009) 873–882.
[93] M. Dakanali, et al., A new dinuclear Ti(IV)−peroxo−citrate complex from aqueous
solutions. Synthetic, structural, and spectroscopic studies in relevance to aqueous titani-
um(IV)−peroxo−citrate speciation, Inorg. Chem. 42 (2003) 4632–4639.
[94] J. Li, K. Cao, Q. Li, D. Xu, Tetragonal faceted-nanorods of anatase TiO 2 with a large per-
centage of active {100} facets and their hierarchical structure, CrystEngComm 14 (2011)
83–85.
[95] F. Bai, et al., A versatile bottom-up assembly approach to colloidal spheres from nano-
crystals, Angew. Chem. 46 (2007) 6650.
[96] J.T. Park, et al., Preparation of TiO 2 spheres with hierarchical pores via grafting polym-
erization and sol–gel process for dye-sensitized solar cells, J. Mater. Chem. 20 (2010)
8521–8530.
Further reading
[1] Q. Zheng, et al., Hierarchical construction of self-standing anodized titania nanotube
arrays and nanoparticles for efficient and cost-effective front-illuminated dye-sensitized
solar cells, ACS Nano 5 (2011) 5088–5093.
[2] W.G. Yang, F.R. Wan, Q.W. Chen, J.J. Li, D.S. Xu, Controlling synthesis of well- crystallized
mesoporous TiO 2 microspheres with ultrahigh surface area for high- performance dye-
sensitized solar cells, J. Mater. Chem. 20 (2010) 2870–2876.