Photogeneration of hydrogen from water by a robust dye-sensitized photocathodeElectronic supplementary information (ESI) available: Experimental section, additional transient absorption spectroscopy, spectroelectrochemistry, photoluminescence and scanning electron microscopy, surface coverage table. See DOI: 10.1039/c6ee02903e

We report here on a photocathode with a "donor-dye-catalyst" assembly on a macro-mesoporous metal oxide for water reduction. The photoelectrocatalytic performance of the photocathode under mild conditions, with a photocurrent density of −56 μA cm −2 and a Faradaic yield of 53%, is superior...

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Bibliographic Details
Main Authors Shan, B, Das, A. K, Marquard, S, Farnum, B. H, Wang, D, Bullock, R. M, Meyer, T. J
Format Journal Article
LanguageEnglish
Published 30.11.2016
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Summary:We report here on a photocathode with a "donor-dye-catalyst" assembly on a macro-mesoporous metal oxide for water reduction. The photoelectrocatalytic performance of the photocathode under mild conditions, with a photocurrent density of −56 μA cm −2 and a Faradaic yield of 53%, is superior relative to other reported photocathodes with surface attached molecular catalysts. Detailed electron transfer analyses show that the successful application of this photocathode originates mainly from the slow back electron transfer following light excitation. The results also demonstrate that addition of the long-chain assembly to the macro-mesoporous electrode surface plays a fundamental role in providing sufficient catalyst for water reduction. Structure and hydrogen evolution performance of the photocathode consisting of a tri-layer assembly on a macro-mesoporous ITO electrode.
Bibliography:10.1039/c6ee02903e
Electronic supplementary information (ESI) available: Experimental section, additional transient absorption spectroscopy, spectroelectrochemistry, photoluminescence and scanning electron microscopy, surface coverage table. See DOI
ISSN:1754-5692
1754-5706
DOI:10.1039/c6ee02903e