An experimental and modeling/simulation-based evaluation of the efficiency and operational performance characteristics of an integrated, membrane-free, neutral pH solar-driven water-splitting system
暂无分享,去创建一个
Nathan S. Lewis | Chengxiang Xiang | Karl Walczak | N. Lewis | Christoph Karp | Meenesh R. Singh | C. Xiang | Jian Jin | K. Walczak | Jian Jin | Chris Karp
[1] Nathan S. Lewis,et al. Modeling, simulation, and design criteria for photoelectrochemical water-splitting systems , 2012 .
[2] Thomas E. Mallouk,et al. Resistance and polarization losses in aqueous buffer–membrane electrolytes for water-splitting photoelectrochemical cells , 2012 .
[3] D. Nocera,et al. Wireless Solar Water Splitting Using Silicon-Based Semiconductors and Earth-Abundant Catalysts , 2011, Science.
[4] 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 .
[5] Y. Ping,et al. Thermally stable N2-intercalated WO3 photoanodes for water oxidation. , 2012, Journal of the American Chemical Society.
[6] Eric L. Miller,et al. High-efficiency photoelectrochemical hydrogen production using multijunction amorphous silicon photoelectrodes , 1998 .
[7] G. G. Stokes. "J." , 1890, The New Yale Book of Quotations.
[8] Nathan S. Lewis,et al. Simulations of the irradiation and temperature dependence of the efficiency of tandem photoelectrochemical water-splitting systems† , 2013 .
[9] Efficient photocatalytic degradation of phenol over Co3O4/BiVO4 composite under visible light irradiation. , 2006, The journal of physical chemistry. B.
[10] Arnold J. Forman,et al. Modeling practical performance limits of photoelectrochemical water splitting based on the current state of materials research. , 2014, ChemSusChem.
[11] W. Marsden. I and J , 2012 .
[12] Stuart Licht,et al. Efficient Solar Water Splitting, Exemplified by RuO2-Catalyzed AlGaAs/Si Photoelectrolysis , 2000 .
[13] James R. McKone,et al. Will Solar-Driven Water-Splitting Devices See the Light of Day? , 2014 .
[14] Nathan S. Lewis,et al. An analysis of the optimal band gaps of light absorbers in integrated tandem photoelectrochemical water-splitting systems , 2013 .
[15] Timothy R. Cook,et al. Solar energy supply and storage for the legacy and nonlegacy worlds. , 2010, Chemical reviews.
[16] Charles C. L. McCrory,et al. Benchmarking heterogeneous electrocatalysts for the oxygen evolution reaction. , 2013, Journal of the American Chemical Society.
[17] Nathan S. Lewis,et al. Modeling the Performance of an Integrated Photoelectrolysis System with 10 × Solar Concentrators , 2014 .
[18] Nathan S. Lewis,et al. Modeling an integrated photoelectrolysis system sustained by water vapor , 2013 .
[19] Michael Grätzel,et al. New Benchmark for Water Photooxidation by Nanostructured α-Fe2O3 Films , 2006 .
[20] James R. McKone,et al. Solar water splitting cells. , 2010, Chemical reviews.
[21] Daniel G. Nocera,et al. In Situ Formation of an Oxygen-Evolving Catalyst in Neutral Water Containing Phosphate and Co2+ , 2008, Science.
[22] Turner,et al. A monolithic photovoltaic-photoelectrochemical device for hydrogen production via water splitting , 1998, Science.
[23] J. Goodenough,et al. A Perovskite Oxide Optimized for Oxygen Evolution Catalysis from Molecular Orbital Principles , 2011, Science.