Harvesting broadband absorption of the solar spectrum for enhanced photocatalytic H2 generation

被引:46
作者
Peh, Connor Kang Nuo [2 ]
Gao, Minmin [2 ]
Ho, Ghim Wei [1 ,2 ,3 ]
机构
[1] Natl Univ Singapore, Engn Sci Programme, Singapore 117576, Singapore
[2] Natl Univ Singapore, Dept Elect & Comp Engn, Singapore 117576, Singapore
[3] ASTAR, Inst Mat Res & Engn, Singapore 117602, Singapore
关键词
TIO2 NANOTUBE ARRAYS; HYDROGEN-PRODUCTION; WATER; PHOTOELECTRODES; PHOTOOXIDATION; CATALYSTS; FILM; CU;
D O I
10.1039/c5ta05042a
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
Absorption of the solar spectrum in the visible and near infrared region is highly desirable to improve photocatalytic H-2 generation. Traditionally, this can be fulfilled by designing photocatalyst materials with narrower band gaps, or with upconversion capabilities. However, such materials often pose challenges such as in synthesis, structural defects, and stability which may lead to adverse photocatalytic performance. This paper focuses on broadband utilization of the solar spectrum for enhanced photocatalysis solar H-2 production where the spectrum not utilized by the photocatalysts is absorbed and converted to heat energy. This approach delves into harvesting the broadband spectrum for synergistic photocatalysis and thermal heat generation, with minimal photocatalyst material manipulation. The profound impact of temperature on photocatalysis was manifested in a drastic increase of H-2 production by a maximum of 40-fold. The apparent quantum yield was also calculated to reach 66.9% using an ultraviolet LED light source. Outdoor testing verifies the potential of broad spectrum operation under natural sunlight as well as the convenience and simplicity of various reactor designs for practical photocatalysis applications.
引用
收藏
页码:19360 / 19367
页数:8
相关论文
共 50 条
[1]   Metal oxide photoelectrodes for hydrogen generation using solar radiation-driven water splitting [J].
Aroutiounian, VM ;
Arakelyan, VM ;
Shahnazaryan, GE .
SOLAR ENERGY, 2005, 78 (05) :581-592
[2]   Upconversion and anti-stokes processes with f and d ions in solids [J].
Auzel, F .
CHEMICAL REVIEWS, 2004, 104 (01) :139-173
[3]   Highly stable CuO incorporated TiO2 catalyst for photocatalytic hydrogen production from H2O [J].
Bandara, J ;
Udawatta, CPK ;
Rajapakse, CSK .
PHOTOCHEMICAL & PHOTOBIOLOGICAL SCIENCES, 2005, 4 (11) :857-861
[4]   Titanium dioxide nanomaterials: Synthesis, properties, modifications, and applications [J].
Chen, Xiaobo ;
Mao, Samuel S. .
CHEMICAL REVIEWS, 2007, 107 (07) :2891-2959
[5]   Increasing Solar Absorption for Photocatalysis with Black Hydrogenated Titanium Dioxide Nanocrystals [J].
Chen, Xiaobo ;
Liu, Lei ;
Yu, Peter Y. ;
Mao, Samuel S. .
SCIENCE, 2011, 331 (6018) :746-750
[6]   Hydrogen production from methanol/water decomposition in a liquid photosystem using the anatase structure of Cu loaded TiO2 [J].
Choi, Hyung-Joo ;
Kang, Misook .
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2007, 32 (16) :3841-3848
[7]   Recent developments in photocatalytic water treatment technology: A review [J].
Chong, Meng Nan ;
Jin, Bo ;
Chow, Christopher W. K. ;
Saint, Chris .
WATER RESEARCH, 2010, 44 (10) :2997-3027
[8]   Charge carrier separation in nanostructured TiO2 photoelectrodes for water splitting [J].
Cowan, Alexander J. ;
Leng, Wenhua ;
Barnes, Piers R. F. ;
Klug, David R. ;
Durrant, James R. .
PHYSICAL CHEMISTRY CHEMICAL PHYSICS, 2013, 15 (22) :8772-8778
[9]   The surface science of titanium dioxide [J].
Diebold, U .
SURFACE SCIENCE REPORTS, 2003, 48 (5-8) :53-229
[10]   STUDY OF N-TYPE SEMICONDUCTING CADMIUM CHALCOGENIDE-BASED PHOTOELECTROCHEMICAL CELLS EMPLOYING POLYCHALCOGENIDE ELECTROLYTES [J].
ELLIS, AB ;
KAISER, SW ;
BOLTS, JM ;
WRIGHTON, MS .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 1977, 99 (09) :2839-2848