Evaluation of Pt, Ni, and Ni–Mo electrocatalysts for hydrogen evolution on crystalline Si electrodes
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- 1 August 2011
- journal article
- research article
- Published by Royal Society of Chemistry (RSC) in Energy & Environmental Science
- Vol. 4 (9), 3573-3583
- https://doi.org/10.1039/c1ee01488a
Abstract
The dark electrocatalytic and light photocathodic hydrogen evolution properties of Ni, Ni–Mo alloys, and Pt on Si electrodes have been measured, to assess the viability of earth-abundant electrocatalysts for integrated, semiconductor coupled fuel formation. In the dark, the activities of these catalysts deposited on degenerately doped p+-Si electrodes increased in the order Ni < Ni–Mo ≤ Pt. Ni–Mo deposited on degenerately doped Si microwires exhibited activity that was very similar to that of Pt deposited by metal evaporation on planar Si electrodes. Under 100 mW cm−2 of Air Mass 1.5 solar simulation, the energy conversion efficiencies of p-type Si/catalyst photoelectrodes ranged from 0.2–1%, and increased in the order Ni ≈ Ni–Mo < Pt, due to somewhat lower photovoltages and photocurrents for p-Si/Ni–Mo relative to p-Si/Ni and p-Si/Pt photoelectrodes. Deposition of the catalysts onto microwire arrays resulted in higher apparent catalytic activities and similar photoelectrode efficiencies than were observed on planar p-Si photocathodes, despite lower light absorption by p-Si in the microwire structures.Keywords
This publication has 34 references indexed in Scilit:
- Photoelectrochemical Hydrogen Evolution Using Si Microwire ArraysJournal of the American Chemical Society, 2011
- Solar Water Splitting CellsChemical Reviews, 2010
- Si microwire-array solar cellsEnergy & Environmental Science, 2010
- Repeated epitaxial growth and transfer of arrays of patterned, vertically aligned, crystalline Si wires from a single Si(111) substrateApplied Physics Letters, 2008
- Growth of vertically aligned Si wire arrays over large areas (>1cm2) with Au and Cu catalystsApplied Physics Letters, 2007
- Powering the planet: Chemical challenges in solar energy utilizationProceedings of the National Academy of Sciences, 2006
- Comparison of the device physics principles of planar and radial p-n junction nanorod solar cellsJournal of Applied Physics, 2005
- High-Efficiency Photoelectrochemical Hydrogen Production Using Multijunction Amorphous Silicon PhotoelectrodesEnergy & Fuels, 1998
- Improvement of photoelectrochemical hydrogen generation by surface modification of p-type silicon semiconductor photocathodesJournal of the American Chemical Society, 1982
- Efficient Solar to Chemical Conversion: 12% Efficient Photoassisted Electrolysis in the [-type InP(Ru)]/HCl-KCl/Pt(Rh) CellPhysical Review Letters, 1981