A taxonomy for solar fuels generators
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[1] K. Domen,et al. Recent advances in semiconductors for photocatalytic and photoelectrochemical water splitting. , 2014, Chemical Society reviews.
[2] Marika Edoff,et al. A monolithic device for solar water splitting based on series interconnected thin film absorbers reaching over 10% solar-to-hydrogen efficiency , 2013 .
[3] Fan Yang,et al. Photoelectrochemical behavior of n-type Si(111) electrodes coated with a single layer of graphene. , 2013, Journal of the American Chemical Society.
[4] Nathan S. Lewis,et al. An analysis of the optimal band gaps of light absorbers in integrated tandem photoelectrochemical water-splitting systems , 2013 .
[5] Pingwu Du,et al. Protein delivery of a Ni catalyst to photosystem I for light-driven hydrogen production. , 2013, Journal of the American Chemical Society.
[6] H. Dinh,et al. Photoelectrochemical Water Splitting: Standards, Experimental Methods, and Protocols , 2013 .
[7] Miro Zeman,et al. Efficient solar water splitting by enhanced charge separation in a bismuth vanadate-silicon tandem photoelectrode , 2013, Nature Communications.
[8] Alexander J. Cowan,et al. Charge carrier trapping, recombination and transfer in hematite (α-Fe2O3) water splitting photoanodes , 2013 .
[9] Andrew Chi-Chih Yao,et al. Quantum replication at the Heisenberg limit , 2013, Nature Communications.
[10] N. Lewis,et al. Photoelectrochemical Behavior of n‑type Si(100) Electrodes Coated with Thin Films of Manganese Oxide Grown by Atomic Layer Deposition , 2013 .
[11] Thomas E Mallouk,et al. Design and development of photoanodes for water-splitting dye-sensitized photoelectrochemical cells. , 2013, Chemical Society reviews.
[12] Jan Augustynski,et al. Highly efficient water splitting by a dual-absorber tandem cell , 2012, Nature Photonics.
[13] Victor S Batista,et al. Light-driven water oxidation for solar fuels. , 2012, Coordination chemistry reviews.
[14] James R. McKone,et al. Hydrogen-evolution characteristics of Ni–Mo-coated, radial junction, n+p-silicon microwire array photocathodes , 2012 .
[15] Alexander J. Cowan,et al. Dynamics of photogenerated holes in surface modified α-Fe2O3 photoanodes for solar water splitting , 2012, Proceedings of the National Academy of Sciences.
[16] M. Wasielewski,et al. Photocatalytic hydrogen evolution from FeMoS-based biomimetic chalcogels. , 2012, Journal of the American Chemical Society.
[17] D. Nocera,et al. Wireless Solar Water Splitting Using Silicon-Based Semiconductors and Earth-Abundant Catalysts , 2011, Science.
[18] K. Mulfort,et al. Nature-driven photochemistry for catalytic solar hydrogen production: a Photosystem I-transition metal catalyst hybrid. , 2011, Journal of the American Chemical Society.
[19] Alexander J. Cowan,et al. The role of cobalt phosphate in enhancing the photocatalytic activity of α-Fe2O3 toward water oxidation. , 2011, Journal of the American Chemical Society.
[20] James R. McKone,et al. Solar water splitting cells. , 2010, Chemical reviews.
[21] Brian D. James,et al. Technoeconomic Analysis of Photoelectrochemical (PEC) Hydrogen Production , 2009 .
[22] T. Moore,et al. Solar fuels via artificial photosynthesis. , 2009, Accounts of chemical research.
[23] J. Schneider,et al. Visible light-driven hydrogen production from aqueous protons catalyzed by molecular cobaloxime catalysts. , 2009, Inorganic chemistry.
[24] Joop Schoonman,et al. Solar hydrogen production with nanostructured metal oxides , 2008 .
[25] M. Grätzel. Dye-sensitized solar cells , 2003 .
[26] Stuart Licht,et al. Efficient Solar Water Splitting, Exemplified by RuO2-Catalyzed AlGaAs/Si Photoelectrolysis , 2000 .
[27] Turner,et al. A monolithic photovoltaic-photoelectrochemical device for hydrogen production via water splitting , 1998, Science.
[28] Eric L. Miller,et al. High-efficiency photoelectrochemical hydrogen production using multijunction amorphous silicon photoelectrodes , 1998 .
[29] T. Mallouk,et al. On septum-based photoelectrochemical cells , 1993 .
[30] O. Srivastava,et al. Titania-titanium semiconductor septum based electrochemical photovoltaic cell , 1992 .
[31] A. Bard,et al. Terminology in semiconductor electrochemistry and photoelectrochemical energy conversion (Recommendations 1991) , 1991 .
[32] P. Kamat,et al. Photophysical and photochemical aspects of coupled semiconductors: charge-transfer processes in colloidal cadmium sulfide-titania and cadmium sulfide-silver(I) iodide systems , 1990 .
[33] N. Lewis,et al. Studies of polycrystalline n-GaAs junctions: effects of metal ion chemisorption on the photoelectrochemical properties of n-GaAs/KOH-Se−/2−, n-GaAs/CH3CN-ferrocene+/0, and n-GaAs/Au interfaces , 1988 .
[34] James R. Bolton,et al. Limiting and realizable efficiencies of solar photolysis of water , 1985, Nature.
[35] Bruce A. Parkinson,et al. On the efficiency and stability of photoelectrochemical devices , 1984 .
[36] M. Dignam,et al. Efficiency of Splitting Water with Semiconducting Photoelectrodes , 1984 .
[37] G. Hodes,et al. Heterojunction Silicon/Indium Tin Oxide Photoelectrodes: Development of Stable Systems in Aqueous Electrolytes and Their Applicability to Solar Energy Conversion and Storage , 1983 .
[38] N. Lewis,et al. n-Type silicon photoelectrochemistry in methanol: Design of a 10.1% efficient semiconductor/liquid junction solar cell. , 1983, Proceedings of the National Academy of Sciences of the United States of America.
[39] Adam Heller,et al. Efficient p ‐ InP ( Rh ‐ H alloy ) and p ‐ InP ( Re ‐ H alloy ) Hydrogen Evolving Photocathodes , 1982 .
[40] W. Bonner,et al. Spontaneous Photoelectrolysis of HBr and HI , 1982 .
[41] W. J. Albery,et al. Development of photogalvanic cells for solar energy conservation , 1982 .
[42] A. Heller. Conversion of Sunlight into Electrical Power and Photoassisted Electrolysis of Water in Photoelectrochemical Cells , 1981 .
[43] A. J. Frank,et al. Stabilization of n-type silicon photoelectrodes to surface oxidation in aqueous electrolyte solution and mediation of oxidation reaction by surface-attached organic conducting polymer , 1981 .
[44] A. Heller. Chemical Control of Surface and Grain Boundary Recombination in Semiconductors , 1981 .
[45] A. Nozik. Photoeffects at Semiconductor-Electrolyte Interfaces , 1981 .
[46] Charles Howard Henry,et al. Limiting efficiencies of ideal single and multiple energy gap terrestrial solar cells , 1980 .
[47] Allen J. Bard,et al. Thermodynamic Potential for the Anodic Dissolution of n‐Type Semiconductors A Crucial Factor Controlling Durability and Efficiency in Photoelectrochemical Cells and an Important Criterion in the Selection of New Electrode/Electrolyte Systems , 1977 .
[48] D. O. Hall,et al. Photochemical conversion and storage of solar energy , 1977 .
[49] D. Ginley,et al. Strontium titanate photoelectrodes. Efficient photoassisted electrolysis of water at zero applied potential , 1976 .
[50] M. Heyrovský,et al. Photovoltaic Phenomena in Aqueous Solutions , 1963, Nature.
[51] D. Porret,et al. Photochemical Reduction of Ceric Ions by Water , 1937, Nature.
[52] Fuding Lin,et al. Adaptive semiconductor/electrocatalyst junctions in water-splitting photoanodes. , 2014, Nature materials.
[53] L. Peter,et al. Photoelectrochemical water splitting : materials, processes and architectures , 2013 .
[54] Allen J. Bard,et al. Artificial Photosynthesis: Solar Splitting of Water to Hydrogen and Oxygen , 1995 .
[55] M. F. Weber,et al. Splitting water with semiconducting photoelectrodes—Efficiency considerations , 1986 .
[56] Nick Serpone,et al. Visible light induced generation of hydrogen from H2S in mixed semiconductor dispersions; improved efficiency through inter-particle electron transfer , 1984 .
[57] N. Lewis,et al. Improvement of photoelectrochemical hydrogen generation by surface modification of p-type silicon semiconductor photocathodes , 1982 .
[58] K. Domen,et al. Photocatalytic decomposition of water vapour on an NiO–SrTiO3 catalyst , 1980 .