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Ni–Mo Nanopowders for Efficient Electrochemical Hydrogen Evolution

ACS Catalysis · 2012 · Vol. 3(2) · pp. 166–169
James R. McKoneBryce SadtlerCaroline A. WerlangNathan S. LewisHarry B. Gray

Abstract

Earth-abundant metals are attractive alternatives to the noble metal composite catalysts that are used in water electrolyzers based on proton-exchange membrane technology. Ni–Mo alloys have been previously developed for the hydrogen evolution reaction (HER), but synthesis methods to date have been limited to formation of catalyst coatings directly on a substrate. We report a method for generating unsupported nanopowders of Ni–Mo, which can be suspended in common solvents and cast onto arbitrary substrates. The mass-specific catalytic activity under alkaline conditions approaches that of the most active reported non-noble HER catalysts, and the coatings display good stability under alkaline conditions. We have also estimated turnover frequencies per surface atom at various overpotentials and conclude that the activity enhancement for Ni–Mo relative to pure Ni is due to a combination of increased surface area and increased fundamental catalytic activity.

Electrocatalysts for Energy ConversionFuel Cells and Related MaterialsAdvanced battery technologies researchCatalysisNoble metalElectrochemistryMaterials scienceChemical engineeringSubstrate (aquarium)HydrogenHydrogen productionMetalInorganic chemistry

Funding

  • National Science Foundation
  • U.S. Department of Energy
  • California Institute of Technology
  • Office of Science
Citations
780
FWCI
17.22
field-weighted impact
References
22
Percentile
99%
vs. same field & year
Citations per year
References
Review and analysis of PEM fuel cell design and manufacturing
Journal of Power Sources · 2003 · 1,663 citations
The Artificial Leaf
Accounts of Chemical Research · 2012 · 1,643 citations
PEM fuel cell electrodes
Journal of Power Sources · 2004 · 1,252 citations
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