Coupling Ti-doping and oxygen vacancies in hematite nanostructures for solar water oxidation with high efficiency
暂无分享,去创建一个
Xuhui Sun | Hui Zhang | Jun Zhong | Xuhui Sun | Jing Gao | J. Zhong | Jing Gao | Jiujun Deng | Aiwu Pu | Ming Li | Yuanyuan Hao | Jiujun Deng | Yu Hao | Hui Zhang | Ming Li | A. Pu
[1] Piers R. F. Barnes,et al. Enhancement of Photoelectrochemical Hydrogen Production from Hematite Thin Films by the Introduction of Ti and Si , 2007 .
[2] I. E. Grey,et al. Efficiency of solar water splitting using semiconductor electrodes , 2006 .
[3] M. Grätzel,et al. Enhancement in the Performance of Ultrathin Hematite Photoanode for Water Splitting by an Oxide Underlayer , 2012, Advanced materials.
[4] Xuhui Sun,et al. Ti-Doped Hematite Nanostructures for Solar Water Splitting with High Efficiency , 2012 .
[5] Michael Grätzel,et al. Translucent thin film Fe2O3 photoanodes for efficient water splitting by sunlight: nanostructure-directing effect of Si-doping. , 2006, Journal of the American Chemical Society.
[6] Michael Grätzel,et al. Light-induced water splitting with hematite: improved nanostructure and iridium oxide catalysis. , 2010, Angewandte Chemie.
[7] P. Bruce,et al. Ordered mesoporous Fe2O3 with crystalline walls. , 2006, Journal of the American Chemical Society.
[8] Young‐Chang Joo,et al. A new hematite photoanode doping strategy for solar water splitting: oxygen vacancy generation. , 2013, Physical chemistry chemical physics : PCCP.
[9] F. Jollet,et al. CHARACTERIZATION OF IRON OXIDES BY X-RAY ABSORPTION AT THE OXYGEN K EDGE USING A FULL MULTIPLE-SCATTERING APPROACH , 1997 .
[10] R. Hamers,et al. Facile post-growth doping of nanostructured hematite photoanodes for enhanced photoelectrochemical water oxidation , 2013 .
[11] Y. Majima,et al. Secondary resonance magnetic force microscopy , 2012 .
[12] Xuhui Sun,et al. Facile synthesis of carbon-coated hematite nanostructures for solar water splitting , 2013 .
[13] Yichuan Ling,et al. The influence of oxygen content on the thermal activation of hematite nanowires. , 2012, Angewandte Chemie.
[14] Yichuan Ling,et al. Facile synthesis of highly photoactive α-Fe₂O₃-based films for water oxidation. , 2011, Nano letters.
[15] Michael Grätzel,et al. Influence of Feature Size, Film Thickness, and Silicon Doping on the Performance of Nanostructured Hematite Photoanodes for Solar Water Splitting , 2009 .
[16] Michael Grätzel,et al. Solar water splitting: progress using hematite (α-Fe(2) O(3) ) photoelectrodes. , 2011, ChemSusChem.
[17] M. Mozetič,et al. XAS study of oxygen plasma-treated micronized iron oxide pigments , 2005 .
[18] Yichuan Ling,et al. Sn-doped hematite nanostructures for photoelectrochemical water splitting. , 2011, Nano letters.
[19] A. Fujishima,et al. Electrochemical Photolysis of Water at a Semiconductor Electrode , 1972, Nature.
[20] M. Seah,et al. Auger and x-ray photoelectron spectroscopy , 1990 .
[21] S. Bent,et al. Electron enrichment in 3d transition metal oxide hetero-nanostructures. , 2011, Nano letters.
[22] M. Grätzel. Photoelectrochemical cells : Materials for clean energy , 2001 .
[23] Jinghua Guo,et al. Direct Observation of Two Electron Holes in a Hematite Photoanode during Photoelectrochemical Water Splitting , 2012 .
[24] Thomas W. Hamann,et al. Highly photoactive Ti-doped α-Fe2O3 thin film electrodes: resurrection of the dead layer , 2013 .