Spectroelectrochemical analysis of the mechanism of (photo)electrochemical hydrogen evolution at a catalytic interface

Understanding reaction mechanisms in heterogeneous (photo)electrochemical catalysts is key to improving solar-to-fuel conversion efficiencies. Here the authors compare the mechanism of hydrogen evolution on ruthenium oxide as an electrocatalyst and as part of a photocathode via an optical/electroche...

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Autores principales: Ernest Pastor, Florian Le Formal, Matthew T. Mayer, S. David Tilley, Laia Francàs, Camilo A. Mesa, Michael Grätzel, James R. Durrant
Formato: article
Lenguaje:EN
Publicado: Nature Portfolio 2017
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Acceso en línea:https://doaj.org/article/9905d3af5a1f435a9da98c3328359c83
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spelling oai:doaj.org-article:9905d3af5a1f435a9da98c3328359c832021-12-02T15:38:31ZSpectroelectrochemical analysis of the mechanism of (photo)electrochemical hydrogen evolution at a catalytic interface10.1038/ncomms142802041-1723https://doaj.org/article/9905d3af5a1f435a9da98c3328359c832017-02-01T00:00:00Zhttps://doi.org/10.1038/ncomms14280https://doaj.org/toc/2041-1723Understanding reaction mechanisms in heterogeneous (photo)electrochemical catalysts is key to improving solar-to-fuel conversion efficiencies. Here the authors compare the mechanism of hydrogen evolution on ruthenium oxide as an electrocatalyst and as part of a photocathode via an optical/electrochemical approach.Ernest PastorFlorian Le FormalMatthew T. MayerS. David TilleyLaia FrancàsCamilo A. MesaMichael GrätzelJames R. DurrantNature PortfolioarticleScienceQENNature Communications, Vol 8, Iss 1, Pp 1-7 (2017)
institution DOAJ
collection DOAJ
language EN
topic Science
Q
spellingShingle Science
Q
Ernest Pastor
Florian Le Formal
Matthew T. Mayer
S. David Tilley
Laia Francàs
Camilo A. Mesa
Michael Grätzel
James R. Durrant
Spectroelectrochemical analysis of the mechanism of (photo)electrochemical hydrogen evolution at a catalytic interface
description Understanding reaction mechanisms in heterogeneous (photo)electrochemical catalysts is key to improving solar-to-fuel conversion efficiencies. Here the authors compare the mechanism of hydrogen evolution on ruthenium oxide as an electrocatalyst and as part of a photocathode via an optical/electrochemical approach.
format article
author Ernest Pastor
Florian Le Formal
Matthew T. Mayer
S. David Tilley
Laia Francàs
Camilo A. Mesa
Michael Grätzel
James R. Durrant
author_facet Ernest Pastor
Florian Le Formal
Matthew T. Mayer
S. David Tilley
Laia Francàs
Camilo A. Mesa
Michael Grätzel
James R. Durrant
author_sort Ernest Pastor
title Spectroelectrochemical analysis of the mechanism of (photo)electrochemical hydrogen evolution at a catalytic interface
title_short Spectroelectrochemical analysis of the mechanism of (photo)electrochemical hydrogen evolution at a catalytic interface
title_full Spectroelectrochemical analysis of the mechanism of (photo)electrochemical hydrogen evolution at a catalytic interface
title_fullStr Spectroelectrochemical analysis of the mechanism of (photo)electrochemical hydrogen evolution at a catalytic interface
title_full_unstemmed Spectroelectrochemical analysis of the mechanism of (photo)electrochemical hydrogen evolution at a catalytic interface
title_sort spectroelectrochemical analysis of the mechanism of (photo)electrochemical hydrogen evolution at a catalytic interface
publisher Nature Portfolio
publishDate 2017
url https://doaj.org/article/9905d3af5a1f435a9da98c3328359c83
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