A monolithic device for solar water splitting based on series interconnected thin film absorbers reaching over 10% solar-to-hydrogen efficiency

被引:198
作者
Jacobsson, T. Jesper [1 ]
Fjallstrom, Viktor [2 ]
Sahlberg, Martin [1 ]
Edoff, Marika [2 ]
Edvinsson, Tomas [1 ]
机构
[1] Uppsala Univ, Angstrom Lab, Dept Chem, S-75121 Uppsala, Sweden
[2] Uppsala Univ, Solid State Elect Div, Dept Engn Sci, S-75121 Uppsala, Sweden
关键词
OXYGEN EVOLUTION; PHOTOELECTRODES; CELLS; ELECTRODES; PHOSPHATE; CATALYSTS; ECONOMY; SYSTEMS; BIVO4; STATE;
D O I
10.1039/c3ee42519c
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Efficient production of hydrogen from solar energy is anticipated to be an important component in a future sustainable post-carbon energy system. Here we demonstrate that series interconnected absorbers in a PV-electrolysis configuration based on the compound semiconductor CIGS, CuInxGa1-xSe2, are a highly interesting concept for solar water splitting applications. The band gap energy of CIGS can be adjusted to a value close to optimum for efficient absorption of the solar spectrum, but is too low to drive overall water splitting. Therefore we connect three cells in series, into a monolithic device, which provides sufficient driving force for the full reaction. Integrated with a catalyst this forms a stable PV/photo-electrochemical device, which when immersed in water reaches over 10% solar-to-hydrogen efficiency for unassisted water splitting. The results show that series interconnected device concepts, which enable use of a substantial part of the solar spectrum, provide a simple route towards highly efficient water splitting and could be used also for other solar absorbers with similar electro-optical properties. We discuss how the efficiency could be increased for this particular device, as well as the general applicability of the concepts used in this work. We also briefly discuss advantages and disadvantages of photo-electrochemical cells in relation to PV-electrolysis with respect to our results.
引用
收藏
页码:3676 / 3683
页数:8
相关论文
共 54 条
[1]  
[Anonymous], 2012, G17303 ASTM
[2]   The hydrogen economy in the 21st century: a sustainable development scenario [J].
Barreto, L ;
Makihira, A ;
Riahi, K .
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2003, 28 (03) :267-284
[3]  
Brillet J, 2012, NAT PHOTONICS, V6, P823, DOI [10.1038/nphoton.2012.265, 10.1038/NPHOTON.2012.265]
[4]   Semiconductor-based Photocatalytic Hydrogen Generation [J].
Chen, Xiaobo ;
Shen, Shaohua ;
Guo, Liejin ;
Mao, Samuel S. .
CHEMICAL REVIEWS, 2010, 110 (11) :6503-6570
[5]   Accelerating materials development for photoelectrochemical hydrogen production: Standards for methods, definitions, and reporting protocols [J].
Chen, Zhebo ;
Jaramillo, Thomas F. ;
Deutsch, Todd G. ;
Kleiman-Shwarsctein, Alan ;
Forman, Arnold J. ;
Gaillard, Nicolas ;
Garland, Roxanne ;
Takanabe, Kazuhiro ;
Heske, Clemens ;
Sunkara, Mahendra ;
McFarland, Eric W. ;
Domen, Kazunari ;
Miller, Eric L. ;
Turner, John A. ;
Dinh, Huyen N. .
JOURNAL OF MATERIALS RESEARCH, 2010, 25 (01) :3-16
[6]   The hydrogen economy [J].
Crabtree, GW ;
Dresselhaus, MS ;
Buchanan, MV .
PHYSICS TODAY, 2004, 57 (12) :39-44
[7]   Efficient Photoelectrochemical Water Splitting by Anodically Grown WO3 Electrodes [J].
Cristino, Vito ;
Caramori, Stefano ;
Argazzi, Roberto ;
Meda, Laura ;
Marra, Gian Luigi ;
Bignozzi, Carlo Alberto .
LANGMUIR, 2011, 27 (11) :7276-7284
[8]   Photoelectrochemical water splitting for hydrogen production using combination of CIGS2 solar cell and RuO2 photocatalyst [J].
Dhere, NG ;
Jahagirdar, AH .
THIN SOLID FILMS, 2005, 480 :462-465
[9]   Hydrogen futures: toward a sustainable energy system [J].
Dunn, S .
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2002, 27 (03) :235-264
[10]   ELECTROCHEMICAL PHOTOLYSIS OF WATER AT A SEMICONDUCTOR ELECTRODE [J].
FUJISHIMA, A ;
HONDA, K .
NATURE, 1972, 238 (5358) :37-+