An Integrated 1-Dimensional Model of a Photoelectrochemical Cell for Water Splitting

被引:28
作者
Berger, Alan [1 ,2 ]
Newman, John [1 ,2 ]
机构
[1] Univ Calif Berkeley, Dept Chem & Biomol Engn, Berkeley, CA 94720 USA
[2] Univ Calif Berkeley, Lawrence Berkeley Natl Lab, Div Mat Sci, Joint Ctr Artificial Photosynth, Berkeley, CA 94720 USA
关键词
HYDROGEN-PRODUCTION; CARBON-DIOXIDE; SOLAR-CELLS; ARTIFICIAL LEAVES; OXYGEN-EVOLUTION; SILICON NANOWIRE; CO2; REDUCTION; ABSORPTION; SYSTEMS; ELECTROLYTES;
D O I
10.1149/2.035408jes
中图分类号
O646 [电化学、电解、磁化学];
学科分类号
081704 ;
摘要
A one-dimensional model of a photoelectrochemical cell for solar water splitting has been developed, with applicability to both "wired" and "wireless" designs. The model of the light absorber handles electron and hole transport. The model of the electrolyte accounts for mass transport through regions of aqueous solution, including stagnant diffusion layers and bulk regions to address mixing due to bubbles, natural convection, or other sources. A polymer membrane may be present in the electrolyte. The models of the light absorber and the electrolyte are integrated through the reactions taking place at the interface between them. Charge transfer from the semiconductor to the solution is handled using a kinetic model involving reactions between the,species in both the light absorber and the electrolyte. A simplified model is also presented for use when concentration gradients in the electrolyte are negligible. The simplified model captures the effect of the electrolyte in the boundary conditions for the light absorber. The model is validated against current-potential data for a hydrogen-evolving light absorber with varying degrees of simulated solar illumination. The model then shows how overall solar-to-hydrogen yield depends on the efficiency of the light absorber and the areal fraction of absorbers in a membrane separator. (C) 2014 The Electrochemical Society.
引用
收藏
页码:E3328 / E3340
页数:13
相关论文
共 61 条
[1]   Transient phenomenological modeling of photoelectrochemical cells for water splitting - Application to undoped hematite electrodes [J].
Andrade, Luisa ;
Lopes, Tania ;
Ribeiro, Helena Aguilar ;
Mendes, Adelio .
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2011, 36 (01) :175-188
[2]  
ARCHER RJ, 1963, ANN NY ACAD SCI, V101, P697
[3]   SURFACE STATES AND RECTIFICATION AT A METAL SEMI-CONDUCTOR CONTACT [J].
BARDEEN, J .
PHYSICAL REVIEW, 1947, 71 (10) :717-727
[4]   Towards Artificial Leaves for Solar Hydrogen and Fuels from Carbon Dioxide [J].
Bensaid, Samir ;
Centi, Gabriele ;
Garrone, Edoardo ;
Perathoner, Siglinda ;
Saracco, Guido .
CHEMSUSCHEM, 2012, 5 (03) :500-521
[5]  
BERGER A, UNPUB
[6]   Material requirements for membrane separators in a water-splitting photoelectrochemical cell [J].
Berger, Alan ;
Segalman, R. A. ;
Newman, J. .
ENERGY & ENVIRONMENTAL SCIENCE, 2014, 7 (04) :1468-1476
[7]   Photoelectrochemical Hydrogen Evolution Using Si Microwire Arrays [J].
Boettcher, Shannon W. ;
Warren, Emily L. ;
Putnam, Morgan C. ;
Santori, Elizabeth A. ;
Turner-Evans, Daniel ;
Kelzenberg, Michael D. ;
Walter, Michael G. ;
McKone, James R. ;
Brunschwig, Bruce S. ;
Atwater, Harry A. ;
Lewis, Nathan S. .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2011, 133 (05) :1216-1219
[8]   ABSORPTION-COEFFICIENT OF SILICON - AN ASSESSMENT OF MEASUREMENTS AND THE SIMULATION OF TEMPERATURE-VARIATION [J].
BUCHER, K ;
BRUNS, J ;
WAGEMANN, HG .
JOURNAL OF APPLIED PHYSICS, 1994, 75 (02) :1127-1132
[9]  
Cao LY, 2009, NAT MATER, V8, P643, DOI [10.1038/nmat2477, 10.1038/NMAT2477]
[10]   Modelling and development of photoelectrochemical reactor for H2 production [J].
Carver, C. ;
Ulissi, Z. ;
Ong, C. K. ;
Dennison, S. ;
Kelsall, G. H. ;
Hellgardt, K. .
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2012, 37 (03) :2911-2923