Iridium Oxide Coordinatively Unsaturated Active Sites Govern the Electrocatalytic Oxidation of Water

Author:

Velasco Vélez Juan Jesús123ORCID,Bernsmeier Denis4,Mom Rik V.25ORCID,Zeller Patrick26,Shao‐Horn Yang7ORCID,Roldan Cuenya Beatriz8ORCID,Knop‐Gericke Axel12,Schlögl Robert12,Jones Travis E.29ORCID

Affiliation:

1. Department of Heterogeneous Reactions Max Planck Institute for Chemical Energy Conversion 45470 Mülheim an der Ruhr Germany

2. Department of Inorganic Chemistry Fritz‐Haber‐Institut der Max‐Planck‐Gesellschaft 14195 Berlin Germany

3. Experiments division ALBA Synchrotron Light Source Cerdanyola del Vallés Barcelona 08290 Spain

4. Department of Chemistry Chemical Engineering Division Technical University Berlin 10623 Berlin Germany

5. Leiden Institute of Chemistry Leiden University Leiden 2333 CC The Netherlands

6. Helmholtz‐Zentrum Berlin für Materialen und Energie 12489 Berlin Germany

7. Department of Mechanical Engineering Massachusetts Institute of Technology Cambridge MA 02139 USA

8. Department of Interface Science Fritz‐Haber‐Institut der Max‐Planck‐Gesellschaft 14195 Berlin Germany

9. Theoretical Division Los Alamos National Laboratory Los Alamos NM 87545 USA

Abstract

AbstractA special membrane electrode assembly to measure operando X‐ray absorption spectra and resonant photoemission spectra of mesoporous templated iridium oxide films is used. These films are calcined to different temperatures to mediate the catalyst activity. By combining operando resonant photoemission measurements of different films with ab initio simulations these are able to unambiguously distinguish µ2‐O (bridging oxygen) and µ1‐O (terminal oxygen) in the near‐surface regions of the catalysts. The intrinsic activity of iridium oxide scales with the formation of µ1‐O (terminal oxygen) is found. Importantly, it is shown that the peroxo species do not accumulate under reaction conditions. Rather, the formation of µ1‐O species, which are active in O−O bond formation during the OER, is the most oxidized oxygen species observed, which is consistent with an O−O rate‐limiting step. Thus, the oxygen species taking part in the electrochemical oxidation of water on iridium electrodes are more involved and complex than previously stated. This result highlights the importance of employing theory together with true and complementary operando measurements capable of probing different aspects of catalysts surfaces during operation.

Publisher

Wiley

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