Science & Technology Review
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2020, 38(23): 85-93
• Exclusive:Solar fules •
Progress of photoelectrocatalytic water splitting based on molecular water oxidation catalysts
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LEE Husileng1, WU Xiujuan1, SUN Licheng1,2
Affiliations
1. State Key Laboratory of Fine Chemicals, Dalian University of Technology(DUT), Dalian 116024, China;
2. Department of Chemistry, School of Chemical Science and Engineering, KTH Royal Institute of Technology, Stockholm 10044, Sweden
Published: 2020-12-13
doi: 10.3981/j.issn.1000-7857.2020.23.009
Outline
Utilizing sunlight to split water into hydrogen and oxygen is an ideal way to convert solar energy into chemical energy and solve energy and environmental problems. In general, water splitting is hindered by the oxidation of water to oxygen which involves transfer processes of four electrons and four protons. To overcome this obstacle, an effective, robust and low-cost water oxidation catalysts (WOCs), and the anodes and photoanodes that perform fast oxygen evolution at low onset potentials, as well as benign conditions are highly desired. In this article we review recent advances in molecular water oxidation catalysts based on the first-row transition metal elements and advances in commonly used semiconductor materials such as α-Fe2O3, WO3, and BiVO4. Finally, we briefly discuss the assembly methods (covalent link, π-π stack, etc.) of molecular catalysts to electrodes and the classic examples of anode in catalytic oxidation of water.
molecular water oxidation catalysts
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semiconductor
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photoanode
LEE Husileng, WU Xiujuan, SUN Licheng.
Progress of photoelectrocatalytic water splitting based on molecular water oxidation catalysts[J].
Science & Technology Review,
2020
, 38
(23)
: 85
-93
.
DOI: 10.3981/j.issn.1000-7857.2020.23.009
Year 2020 volume 38 Issue 23
PDF
477
71
Cite this Article
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Article Info
doi: 10.3981/j.issn.1000-7857.2020.23.009
- Receive Date:2020-09-04
- Online Date:2021-01-14
- Published:2020-12-13