Synthesis and characterization of high surface area CuWO4 and Bi2WO6 electrodes for use as photoanodes for solar water oxidation
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[1] A. Kudo,et al. A Novel Aqueous Process for Preparation of Crystal Form-Controlled and Highly Crystalline BiVO4 Powder from Layered Vanadates at Room Temperature and Its Photocatalytic and Photophysical Properties , 1999 .
[2] J. Jolivet,et al. Bi2O3, BiVO4, and Bi2WO6: Impact of Surface Properties on Photocatalytic Activity under Visible Light , 2011 .
[3] D. Errandonea,et al. Optical absorption of divalent metal tungstates: Correlation between the band-gap energy and the cation ionic radius , 2008, 0807.2115.
[4] A. Kudo,et al. H2 or O2 Evolution from Aqueous Solutions on Layered Oxide Photocatalysts Consisting of Bi3+ with 6s2 Configuration and d0 Transition Metal Ions , 1999 .
[5] Arthur J. Nozik,et al. Photoelectrochemistry: Applications to Solar Energy Conversion , 1978 .
[6] F. A. Benko,et al. CuWO4 and Cu3WO6 as anodes for the photoelectrolysis of water , 1982 .
[7] M. Lalic,et al. Ab initio study of electronic, magnetic and optical properties of CuWO4 tungstate , 2011 .
[8] J. A. Seabold,et al. Effect of a Cobalt-Based Oxygen Evolution Catalyst on the Stability and the Selectivity of Photo-Oxidation Reactions of a WO3 Photoanode , 2011 .
[9] Yanfa Yan,et al. The effects of Bi alloying in Cu delafossites: A density functional theory study , 2011 .
[10] R. Amal,et al. Transforming Anodized WO3 Films into Visible-Light-Active Bi2WO6 Photoelectrodes by Hydrothermal Treatment. , 2012, The journal of physical chemistry letters.
[11] Chunying Wang,et al. Degradation and mineralization of bisphenol A by mesoporous Bi2WO6 under simulated solar light irradiation. , 2010, Environmental science & technology.
[12] W. Ho,et al. Ultrasonic Spray Pyrolysis Synthesis of Porous Bi2WO6 Microspheres and Their Visible-Light-Induced Photocatalytic Removal of NO , 2010 .
[13] Yan‐Zhen Zheng,et al. Synthesis of Bi2WO6 Nanoplate-Built Hierarchical Nest-like Structures with Visible-Light-Induced Photocatalytic Activity , 2007 .
[14] J. Bockris,et al. Thin film photoelectrochemistry: Iron oxide , 1984 .
[15] S. Arora,et al. Electrochemical characteristics of copper tungstate single crystals , 1990 .
[16] M. Grätzel,et al. Probing the photoelectrochemical properties of hematite (α-Fe2O3) electrodes using hydrogen peroxide as a hole scavenger , 2011 .
[17] J. Augustynski,et al. Crystallographically oriented mesoporous WO3 films: synthesis, characterization, and applications. , 2001, Journal of the American Chemical Society.
[18] Aron Walsh,et al. Band Edge Electronic Structure of BiVO4: Elucidating the Role of the Bi s and V d Orbitals , 2009 .
[19] G. Adami,et al. Synthesis, characterization and photocatalytic performance of transition metal tungstates , 2010 .
[20] S. Skrabalak,et al. Elucidating the structure-dependent photocatalytic properties of Bi2WO6: a synthesis guided investigation. , 2012, Dalton transactions.
[21] N. Lewis,et al. A quantitative assessment of the competition between water and anion oxidation at WO3 photoanodes in acidic aqueous electrolytes , 2012 .
[22] J. N. Dann,et al. Solid-phase synthesis of cupric tungstate , 2001 .
[23] V. Atuchin,et al. Electronic Structure of h-WO3 and CuWO4 Nanocrystals, Harvesting Materials for Renewable Energy Systems and Functional Devices , 2011 .
[24] Bin Yang,et al. Strong photoresponse of nanostructured tungsten trioxide films prepared via a sol–gel route , 2007 .
[25] P. Pandey,et al. Spray deposition process of polycrystalline thin films of CuWO4 and study on its photovoltaic electrochemical properties , 2005 .
[26] B. Marsen,et al. Electronic Surface Level Positions of WO3 Thin Films for Photoelectrochemical Hydrogen Production , 2008 .
[27] Roel van de Krol,et al. Highly Improved Quantum Efficiencies for Thin Film BiVO4 Photoanodes , 2011 .
[28] Kyoung-Shin Choi,et al. Efficient and stable photo-oxidation of water by a bismuth vanadate photoanode coupled with an iron oxyhydroxide oxygen evolution catalyst. , 2012, Journal of the American Chemical Society.
[29] Chang Woo Kim,et al. Facile preparation of p-CuO and p-CuO/n-CuWO4 junction thin films and their photoelectrochemical properties , 2012 .
[30] B. Ohtani,et al. Effect of Photoexcited Electron Dynamics on Photocatalytic Efficiency of Bismuth Tungstate , 2011 .
[31] A. Walsh,et al. Electronic structure of the alpha and delta phases of Bi2O3: A combined ab initio and x-ray spectroscopy study , 2006 .
[32] B. Bartlett,et al. Electrochemical deposition and photoelectrochemistry of CuWO4, a promising photoanode for water oxidation , 2011 .
[33] James R. McKone,et al. Solar water splitting cells. , 2010, Chemical reviews.
[34] B. Bartlett,et al. Water Oxidation on a CuWO4–WO3 Composite Electrode in the Presence of [Fe(CN)6]3–: Toward Solar Z-Scheme Water Splitting at Zero Bias , 2012 .
[35] Kyoung-Shin Choi,et al. Effect of Electrolytes on the Selectivity and Stability of n-type WO3 Photoelectrodes for Use in Solar Water Oxidation , 2012 .