Using TiO2 as a conductive protective layer for photocathodic H2 evolution.
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Ib Chorkendorff | Ole Hansen | Brian Seger | O. Hansen | I. Chorkendorff | A. B. Laursen | P. Vesborg | B. Seger | Thomas Pedersen | Peter C K Vesborg | Anders B Laursen | T. Pedersen
[1] Thomas F. Jaramillo,et al. New cubic perovskites for one- and two-photon water splitting using the computational materials repository , 2012 .
[2] S. Dahl,et al. Hydrogen production using a molybdenum sulfide catalyst on a titanium-protected n(+)p-silicon photocathode. , 2012, Angewandte Chemie.
[3] Nripan Mathews,et al. Ultrathin films on copper(I) oxide water splitting photocathodes: a study on performance and stability , 2012 .
[4] Ib Chorkendorff,et al. Solar-fuel generation: Towards practical implementation. , 2012, Nature materials.
[5] H. Vrubel,et al. Amorphous molybdenum sulfide films as catalysts for electrochemical hydrogen production in water , 2011 .
[6] Ib Chorkendorff,et al. Bioinspired molecular co-catalysts bonded to a silicon photocathode for solar hydrogen evolution. , 2011, Nature materials.
[7] N. Lewis,et al. pH-Independent, 520 mV Open-Circuit Voltages of Si/Methyl Viologen 2+/+ Contacts Through Use of Radial n + p-Si Junction Microwire Array Photoelectrodes , 2011 .
[8] Nathan S Lewis,et al. Photoelectrochemical hydrogen evolution using Si microwire arrays. , 2011, Journal of the American Chemical Society.
[9] E. Johansson,et al. Synthesis and characterization of mixed methyl/allyl monolayers on Si(111). , 2010, The journal of physical chemistry. B.
[10] C. Meunier,et al. Densification of amorphous sol–gel TiO2 films: An X-ray reflectometry study , 2010 .
[11] Brian D. James,et al. Technoeconomic Analysis of Photoelectrochemical (PEC) Hydrogen Production , 2009 .
[12] A. Kudo,et al. Heterogeneous photocatalyst materials for water splitting. , 2009, Chemical Society reviews.
[13] A. Fujishima,et al. TiO2 photocatalysis and related surface phenomena , 2008 .
[14] P. Kamat. Meeting the Clean Energy Demand: Nanostructure Architectures for Solar Energy Conversion , 2007 .
[15] N. Lewis,et al. Powering the planet: Chemical challenges in solar energy utilization , 2006, Proceedings of the National Academy of Sciences.
[16] H. Haick,et al. Electrical characteristics and chemical stability of non-oxidized, methyl-terminated silicon nanowires. , 2006, Journal of the American Chemical Society.
[17] Bryce S. Richards,et al. Comparison of TiO2 and other dielectric coatings for buried‐contact solar cells: a review , 2004 .
[18] Philip N. Ross,et al. TEMPERATURE-DEPENDENT HYDROGEN ELECTROCHEMISTRY ON PLATINUM LOW-INDEX SINGLE-CRYSTAL SURFACES IN ACID SOLUTIONS , 1997 .
[19] G. M. Rao,et al. dc reactive magnetron sputtering of titanium‐structural and optical characterization of TiO2 films , 1992 .
[20] M. F. Weber,et al. Splitting water with semiconducting photoelectrodes—Efficiency considerations , 1986 .
[21] N. Sato,et al. Ellipsometric study of anodic oxide films on titanium in hydrochloric acid, sulfuric acid, and phosphate solution , 1985 .
[22] M. Lungu,et al. On the reduction of platinum oxide layers by hydrogen in aqueous H2SO4 under open circuit conditions , 1982 .
[23] F. Cardon,et al. Investigation on the Kinetics of Electroreduction Processes at Dark TiO2 and SrTiO3 Single Crystal Semiconductor Electrodes , 1980 .
[24] P. Kohl,et al. Semiconductor Electrodes XIV . Electrochemistry and Electroluminescence at n‐Type in Aqueous Solutions , 1978 .
[25] G. Libowitz. The nature and properties of transition metal hydrides , 1960 .