Navigation auf zora.uzh.ch

Search ZORA

ZORA (Zurich Open Repository and Archive)

Ruthenium Oxide Hydrogen Evolution Catalysis on Composite Cuprous Oxide Water-Splitting Photocathodes

Tilley, S David; Schreier, Marcel; Azevedo, João; Stefik, Morgan; Grätzel, Michael (2014). Ruthenium Oxide Hydrogen Evolution Catalysis on Composite Cuprous Oxide Water-Splitting Photocathodes. Advanced Functional Materials, 24(3):303-311.

Abstract

Photocathodes based on cuprous oxide (Cu2O) are promising materials for large scale and widespread solar fuel generation due to the abundance of copper, suitable bandgap, and favorable band alignments for reducing water and carbon dioxide. A protective overlayer is required to stabilize the Cu2O in aqueous media under illumination, and the interface between this overlayer and the catalyst nanoparticles was previously identified as a key source of instability. Here, the properties of the protective titanium dioxide overlayer of composite cuprous oxide photocathodes are further investigated, as well as an oxide-based hydrogen evolution catalyst, ruthenium oxide (RuO2). The RuO2-catalyzed photoelectrodes exhibit much improved stability versus platinum nanoparticles, with 94% stability after 8 h of light-chopping chronoamperometry. Faradaic efficiencies of ∼100% are obtained as determined by measurement of the evolved hydrogen gas. The sustained photocurrents of close to 5 mA cm−2 obtained with this electrode during the chronoamperometry measurement (at 0 V vs. the reversible hydrogen electrode, pH 5, and simulated 1 sun illumination) would correspond to greater than 6% solar-to-hydrogen conversion efficiency in a tandem photoelectrochemical cell, where the bias is provided by a photovoltaic device such as a dye-sensitized solar cell.

Additional indexing

Item Type:Journal Article, refereed, original work
Communities & Collections:07 Faculty of Science > Department of Chemistry
Dewey Decimal Classification:540 Chemistry
Scopus Subject Areas:Physical Sciences > General Chemistry
Physical Sciences > General Materials Science
Physical Sciences > Condensed Matter Physics
Language:English
Date:22 January 2014
Deposited On:28 May 2015 07:01
Last Modified:13 Mar 2025 02:37
Publisher:Wiley-Blackwell Publishing, Inc.
ISSN:1616-301X
OA Status:Closed
Publisher DOI:https://doi.org/10.1002/adfm.201301106

Metadata Export

Statistics

Citations

Dimensions.ai Metrics
243 citations in Web of Science®
260 citations in Scopus®
Google Scholar™

Altmetrics

Downloads

1 download since deposited on 28 May 2015
0 downloads since 12 months
Detailed statistics

Authors, Affiliations, Collaborations

Similar Publications