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Jang, Ji-Wook
JW Energy Lab.
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Understanding the origin of photoelectrode performance enhancement by probing surface kinetics

Author(s)
Thorne, James E.Jang, Ji-WookLiu, Erik Y.Wang, Dunwei
Issued Date
2016-05
DOI
10.1039/c5sc04519c
URI
https://scholarworks.unist.ac.kr/handle/201301/19993
Fulltext
http://pubs.rsc.org/en/Content/ArticleLanding/2016/SC/C5SC04519C#!divAbstract
Citation
CHEMICAL SCIENCE, v.7, no.5, pp.3347 - 3354
Abstract
Photoelectrochemical (PEC) water splitting holds the potential to meet the challenges associated with the intermittent nature of sunlight. Catalysts have often been shown to improve the performance of PEC water splitting, but their working mechanisms are not well understood. Using intensity modulated photocurrent spectroscopy (IMPS), we determined the rate constants of water oxidation and recombination at the surface of three different hematite-based photoanodes. It was found that the best performing electrodes, in terms of photocurrent onset potential, exhibited the slowest water oxidation rate constants, which was a surprise. The performance of these photoelectrodes was enabled by the slow surface recombination. When amorphous NiFeOx, a water oxidation catalyst, was present, the rate of surface hole transfer actually slowed down; what was slowed more was the recombination rate at the hematite surface, resulting in better water oxidation performance. As such, NiFeOx primarily serves as a passivation layer rather than a catalytic layer. Together a better understanding of the role of catalytic overlayers for water oxidation has been achieved
Publisher
ROYAL SOC CHEMISTRY
ISSN
2041-6520
Keyword
INTENSITY-MODULATED PHOTOVOLTAGEMODIFIED ALPHA-FE2O3 PHOTOANODESWATER OXIDATIONOXYGEN-EVOLUTIONPHOTOCURRENT SPECTROSCOPYNANOSTRUCTURED ALPHA-FE2O3HEMATITE PHOTOANODESSOLAR-CELLSCATALYSTOXIDE

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