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Solution-cast metal oxide thin film electrocatalysts for oxygen evolution.

Publication ,  Journal Article
Trotochaud, L; Ranney, JK; Williams, KN; Boettcher, SW
Published in: Journal of the American Chemical Society
October 2012

Water oxidation is a critical step in water splitting to make hydrogen fuel. We report the solution synthesis, structural/compositional characterization, and oxygen evolution reaction (OER) electrocatalytic properties of ~2-3 nm thick films of NiO(x), CoO(x), Ni(y)Co(1-y)O(x), Ni(0.9)Fe(0.1)O(x), IrO(x), MnO(x), and FeO(x). The thin-film geometry enables the use of quartz crystal microgravimetry, voltammetry, and steady-state Tafel measurements to study the electrocatalytic activity and electrochemical properties of the oxides. Ni(0.9)Fe(0.1)O(x) was found to be the most active water oxidation catalyst in basic media, passing 10 mA cm(-2) at an overpotential of 336 mV with a Tafel slope of 30 mV dec(-1) with oxygen evolution reaction (OER) activity roughly an order of magnitude higher than IrO(x) control films and similar to the best known OER catalysts in basic media. The high activity is attributed to the in situ formation of layered Ni(0.9)Fe(0.1)OOH oxyhydroxide species with nearly every Ni atom electrochemically active. In contrast to previous reports that showed synergy between Co and Ni oxides for OER catalysis, Ni(y)Co(1-y)O(x) thin films showed decreasing activity relative to the pure NiO(x) films with increasing Co content. This finding is explained by the suppressed in situ formation of the active layered oxyhydroxide with increasing Co. The high OER activity and simple synthesis make these Ni-based catalyst thin films useful for incorporating with semiconductor photoelectrodes for direct solar-driven water splitting or in high-surface-area electrodes for water electrolysis.

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Published In

Journal of the American Chemical Society

DOI

EISSN

1520-5126

ISSN

0002-7863

Publication Date

October 2012

Volume

134

Issue

41

Start / End Page

17253 / 17261

Related Subject Headings

  • Water
  • Surface Properties
  • Solutions
  • Particle Size
  • Oxygen
  • Oxides
  • Metals, Heavy
  • General Chemistry
  • Electrochemical Techniques
  • Catalysis
 

Citation

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Trotochaud, L., Ranney, J. K., Williams, K. N., & Boettcher, S. W. (2012). Solution-cast metal oxide thin film electrocatalysts for oxygen evolution. Journal of the American Chemical Society, 134(41), 17253–17261. https://doi.org/10.1021/ja307507a
Trotochaud, Lena, James K. Ranney, Kerisha N. Williams, and Shannon W. Boettcher. “Solution-cast metal oxide thin film electrocatalysts for oxygen evolution.Journal of the American Chemical Society 134, no. 41 (October 2012): 17253–61. https://doi.org/10.1021/ja307507a.
Trotochaud L, Ranney JK, Williams KN, Boettcher SW. Solution-cast metal oxide thin film electrocatalysts for oxygen evolution. Journal of the American Chemical Society. 2012 Oct;134(41):17253–61.
Trotochaud, Lena, et al. “Solution-cast metal oxide thin film electrocatalysts for oxygen evolution.Journal of the American Chemical Society, vol. 134, no. 41, Oct. 2012, pp. 17253–61. Epmc, doi:10.1021/ja307507a.
Trotochaud L, Ranney JK, Williams KN, Boettcher SW. Solution-cast metal oxide thin film electrocatalysts for oxygen evolution. Journal of the American Chemical Society. 2012 Oct;134(41):17253–17261.
Journal cover image

Published In

Journal of the American Chemical Society

DOI

EISSN

1520-5126

ISSN

0002-7863

Publication Date

October 2012

Volume

134

Issue

41

Start / End Page

17253 / 17261

Related Subject Headings

  • Water
  • Surface Properties
  • Solutions
  • Particle Size
  • Oxygen
  • Oxides
  • Metals, Heavy
  • General Chemistry
  • Electrochemical Techniques
  • Catalysis