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Solar hydrogen production with nanostructured metal oxides

Journal of Materials Chemistry · 2008 · Vol. 18(20) · pp. 2311–2311
Roel van de KrolYongqi LiangJ. Schoonman

Abstract

The direct conversion of solar energy into hydrogen represents an attractive but challenging alternative for photo-voltaic solar cells. Several metal oxide semiconductors are able to split water into hydrogen and oxygen upon illumination, but the efficiencies are still (too) low. The operating principles of photo-electrochemical devices for water splitting, their main bottlenecks, and the various device concepts will be reviewed. Materials properties play a key role, and the advantages and pitfalls of the use of interfacial layers and dopants will be discussed. Special attention will be given to recent progress made in the synthesis of nanostructured metal oxides with high aspect ratios, such as nanowire arrays, which offers new opportunities to develop efficient photo-active materials for solar water splitting.

Copper-based nanomaterials and applicationsElectronic and Structural Properties of OxidesAdvanced Photocatalysis TechniquesWater splittingNanotechnologyMaterials scienceDopantHydrogen productionHydrogenOxideSolar energyNanowireMetal

Funding

  • Peking University
Citations
660
FWCI
20.04
field-weighted impact
References
76
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100%
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References
Powering the planet: Chemical challenges in solar energy utilization
Proceedings of the National Academy of Sciences · 2006 · 8,164 citations
Daylight Photocatalysis by Carbon‐Modified Titanium Dioxide
Angewandte Chemie International Edition · 2003 · 2,052 citations
Efficiency of solar water splitting using semiconductor electrodes
International Journal of Hydrogen Energy · 2006 · 869 citations
Photoelectrochemical cells
Nature · 2001 · 12,536 citations
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