Morphology control of one-dimensional heterojunctions for highly efficient photoanodes used for solar water splitting
暂无分享,去创建一个
Yun Jeong Hwang | Hyejin Jung | Oh-Shim Joo | Hyo Sang Jeon | Byoung Koun Min | S. Chae | Y. Hwang | O. Joo | H. Jeon | Hyejin Jung | Sang Youn Chae | B. Min
[1] T. Furtak,et al. Efficient photoelectrochemical water oxidation over cobalt-phosphate (Co-Pi) catalyst modified BiVO4/1D-WO3 heterojunction electrodes. , 2013, Physical chemistry chemical physics : PCCP.
[2] Minglong Zhang,et al. Photoelectrochemical cells for solar hydrogen production: current state of promising photoelectrodes, methods to improve their properties, and outlook , 2013 .
[3] Aron Walsh,et al. Band Edge Electronic Structure of BiVO4: Elucidating the Role of the Bi s and V d Orbitals , 2009 .
[4] Kyoung-Shin Choi,et al. Synthesis and characterization of high surface area CuWO4 and Bi2WO6 electrodes for use as photoanodes for solar water oxidation , 2013 .
[5] D. Nocera,et al. Wireless Solar Water Splitting Using Silicon-Based Semiconductors and Earth-Abundant Catalysts , 2011, Science.
[6] D. Gamelin,et al. Near-complete suppression of surface recombination in solar photoelectrolysis by "Co-Pi" catalyst-modified W:BiVO4. , 2011, Journal of the American Chemical Society.
[7] Kazuhiko Maeda,et al. Ta3N5 photoanodes for water splitting prepared by sputtering , 2011 .
[8] Xiaolin Zheng,et al. Simultaneously efficient light absorption and charge separation in WO3/BiVO4 core/shell nanowire photoanode for photoelectrochemical water oxidation. , 2014, Nano letters.
[9] M. Grätzel. Photoelectrochemical cells : Materials for clean energy , 2001 .
[10] Miro Zeman,et al. Efficient solar water splitting by enhanced charge separation in a bismuth vanadate-silicon tandem photoelectrode , 2013, Nature Communications.
[11] Roel van de Krol,et al. Water-splitting catalysis and solar fuel devices: artificial leaves on the move. , 2013, Angewandte Chemie.
[12] Yiseul Park,et al. Progress in bismuth vanadate photoanodes for use in solar water oxidation. , 2013, Chemical Society reviews.
[13] Liejin Guo,et al. Vertically aligned WO₃ nanowire arrays grown directly on transparent conducting oxide coated glass: synthesis and photoelectrochemical properties. , 2011, Nano letters.
[14] 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.
[15] Thomas F. Jaramillo,et al. Accelerating materials development for photoelectrochemical hydrogen production: Standards for methods, definitions, and reporting protocols , 2010 .
[16] Nathan S Lewis,et al. Photoelectrochemical hydrogen evolution using Si microwire arrays. , 2011, Journal of the American Chemical Society.
[17] Se Jin Park,et al. Solution processed high band‐gap CuInGaS2 thin film for solar cell applications , 2014 .
[18] S. Chae,et al. Facile growth of aligned WO3 nanorods on FTO substrate for enhanced photoanodic water oxidation activity , 2013 .
[19] A. Kudo,et al. Heterogeneous photocatalyst materials for water splitting. , 2009, Chemical Society reviews.
[20] J. Jang,et al. Photocatalytic and photoelectrochemical water oxidation over metal-doped monoclinic BiVO(4) photoanodes. , 2012, ChemSusChem.
[21] Michael Grätzel,et al. WO3-Fe2O3 Photoanodes for Water Splitting: A Host Scaffold, Guest Absorber Approach , 2009 .
[22] Craig A. Grimes,et al. Aqueous Growth of Pyramidal-Shaped BiVO4 Nanowire Arrays and Structural Characterization: Application to Photoelectrochemical Water Splitting , 2010 .
[23] Jong Hyeok Park,et al. Photoelectrochemical cells with tungsten trioxide/Mo-doped BiVO4 bilayers. , 2012, Physical chemistry chemical physics : PCCP.
[24] Xien Liu,et al. Nanostructure-based WO3 photoanodes for photoelectrochemical water splitting. , 2012, Physical chemistry chemical physics : PCCP.
[25] K. Domen,et al. Photocatalytic Water Splitting: Recent Progress and Future Challenges , 2010 .
[26] N. Lewis,et al. Powering the planet: Chemical challenges in solar energy utilization , 2006, Proceedings of the National Academy of Sciences.
[27] Jae Sung Lee,et al. Heterojunction BiVO4/WO3 electrodes for enhanced photoactivity of water oxidation , 2011 .
[28] Liejin Guo,et al. Nanostructured WO₃/BiVO₄ heterojunction films for efficient photoelectrochemical water splitting. , 2011, Nano letters.
[29] Hyunwoong Park,et al. Strategic Modification of BiVO4 for Improving Photoelectrochemical Water Oxidation Performance , 2013 .
[30] Se Jin Park,et al. Cocktails of paste coatings for performance enhancement of CuInGaS(2) thin-film solar cells. , 2014, ACS applied materials & interfaces.
[31] J. S. Lee,et al. Size effects of WO3 nanocrystals for photooxidation of water in particulate suspension and photoelectrochemical film systems , 2009 .
[32] Tao Yu,et al. Solar hydrogen generation from seawater with a modified BiVO4 photoanode , 2011 .
[33] O. Terasaki,et al. Cobalt phosphate-modified barium-doped tantalum nitride nanorod photoanode with 1.5% solar energy conversion efficiency , 2013, Nature Communications.
[34] Michael Grätzel,et al. Identifying champion nanostructures for solar water-splitting. , 2013, Nature materials.
[35] Nathan S. Lewis,et al. Comparison of the device physics principles of planar and radial p-n junction nanorod solar cells , 2005 .
[36] Daniel R. Gamelin,et al. Composite photoanodes for photoelectrochemical solar water splitting , 2010 .