SnO2, IrO2, Ta2O5, Bi2O3, and TiO2 nanoparticle anodes: electrochemical oxidation coupled with the cathodic reduction of water to yield molecular H2

被引:30
作者
Choi, Jina [1 ]
Qu, Yan [1 ]
Hoffmann, Michael R. [1 ]
机构
[1] CALTECH, Linde Robinson Labs, Pasadena, CA 91125 USA
关键词
Semiconductor composites; Nanoparticle coatings; Electrochemical oxidation; Wastewater treatment; Hydrogen production; Organic compound oxidation; Sustainable development; DOPED DIAMOND ELECTRODE; WASTE-WATER; HYDROGEN-PRODUCTION; EFFLUENT; PHENOL; BLUE; DEGRADATION; INDUSTRY; SYSTEM;
D O I
10.1007/s11051-012-0983-5
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
In recent years, the search for environmentally friendly alternative energy sources with reduced carbon footprints has increased. The coupling of photovoltaic power sources with advanced electrolysis systems for hydrogen production via water splitting using organic contaminants as sacrificial electron donors has been considered to a be viable alternative. In this report, we demonstrated the feasibility of a scaled-up rooftop prototype of the proposed hybrid photovoltaic-electrolysis system, which utilizes semiconductor nanoparticles coated on to metal substrates as electrodes for the generation of hydrogen coupled with the oxidation of wastewater. Application of an anodic bias of >2.0 V to bismuth-doped TiO2 (BiOx-TiO2) on Ti metal anodes with a sequential under-coatings of nanoparticulate SnO2, IrO2, Ta2O5, and Bi2O3 results in the electrochemical degradation of a variety of organic chemical contaminants in water (i.e., rhodamine B (Rh. B), methylene blue (MB), salicylic acid, triclosan, and phenol) and actual wastewater from a chemical manufacturing plant, while at the same time, molecular hydrogen is produced at stainless steel (SS) cathodes. The kinetics of the anodic substrates oxidation is investigated as a function of the cell current (I-cell), substrate concentration, and background electrolyte composition (e. g., NaCl, Na2SO4, or seawater). Average current efficiencies were found to be in the range of 4-22 %, while the cathodic current and energy efficiencies for hydrogen production were found to be in the range of 50-70 % and 20-40 %, respectively.
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页数:12
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共 29 条
[1]   Optimized photovoltiac system for hydrogen production [J].
Ahmad, GE ;
El Shenawy, ET .
RENEWABLE ENERGY, 2006, 31 (07) :1043-1054
[2]   Contributions of electrochemical oxidation to waste-water treatment: fundamentals and review of applications [J].
Anglada, Angela ;
Urtiaga, Ane ;
Ortiz, Inmaculada .
JOURNAL OF CHEMICAL TECHNOLOGY AND BIOTECHNOLOGY, 2009, 84 (12) :1747-1755
[3]   Electrochemical incineration of glucose as a model organic substrate - II. Role of active chlorine mediation [J].
Bonfatti, F ;
Ferro, S ;
Lavezzo, F ;
Malacarne, M ;
Lodi, G ;
De Battisti, A .
JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 2000, 147 (02) :592-596
[4]   Electrochemical treatment of landfill leachates using a boron-doped diamond anode [J].
Cabeza, Adelaida ;
Urtiaga, Ana M. ;
Ortiz, Inmaculada .
INDUSTRIAL & ENGINEERING CHEMISTRY RESEARCH, 2007, 46 (05) :1439-1446
[5]   Electrochemical technologies in wastewater treatment [J].
Chen, GH .
SEPARATION AND PURIFICATION TECHNOLOGY, 2004, 38 (01) :11-41
[6]   ANODIC-OXIDATION OF PHENOL FOR WASTE-WATER TREATMENT [J].
COMNINELLIS, C ;
PULGARIN, C .
JOURNAL OF APPLIED ELECTROCHEMISTRY, 1991, 21 (08) :703-708
[7]  
COMNINELLIS C, 1995, J APPL ELECTROCHEM, V25, P23
[8]  
DOE, 2008, DOEEIA04842008
[9]   Optimization of solar powered hydrogen production using photovoltaic electrolysis devices [J].
Gibson, Thomas L. ;
Kelly, Nelson A. .
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2008, 33 (21) :5931-5940
[10]   Evaluation of a 5 kWP photovoltaic hydrogen production and storage installation for a residential home in Switzerland [J].
Hollmuller, P ;
Joubert, JM ;
Lachal, B ;
Yvon, K .
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2000, 25 (02) :97-109