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Combining theory and experiment in electrocatalysis: Insights into materials design

Science · 2017 · Vol. 355(6321)
Zhi Wei SehJakob KibsgaardColin F. DickensIb ChorkendorffJens K. NørskovThomas F. Jaramillo

Abstract

Electrocatalysis plays a central role in clean energy conversion, enabling a number of sustainable processes for future technologies. This review discusses design strategies for state-of-the-art heterogeneous electrocatalysts and associated materials for several different electrochemical transformations involving water, hydrogen, and oxygen, using theory as a means to rationalize catalyst performance. By examining the common principles that govern catalysis for different electrochemical reactions, we describe a systematic framework that clarifies trends in catalyzing these reactions, serving as a guide to new catalyst development while highlighting key gaps that need to be addressed. We conclude by extending this framework to emerging clean energy reactions such as hydrogen peroxide production, carbon dioxide reduction, and nitrogen reduction, where the development of improved catalysts could allow for the sustainable production of a broad range of fuels and chemicals.

Electrocatalysts for Energy ConversionMachine Learning in Materials ScienceCO2 Reduction Techniques and CatalystsElectrocatalystComputer scienceNanotechnologyMaterials sciencePhysicsQuantum mechanics

Funding

  • National Science Foundation
  • U.S. Department of Energy
  • Villum Fonden
  • National Research Foundation
  • National Research Foundation Singapore
  • Office of Science
  • Basic Energy Sciences
Citations
11,445
FWCI
254.09
field-weighted impact
References
174
Percentile
100%
vs. same field & year
Citations per year
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