• Media type: E-Article
  • Title: The Role of Surface Hydroxylation, Lattice Vacancies and Bond Covalency in the Electrochemical Oxidation of Water (OER) on Ni-Depleted Iridium Oxide Catalysts
  • Contributor: Nong, Hong Nhan; Tran, Hoang Phi; Spöri, Camillo; Klingenhof, Malte; Frevel, Lorenz; Jones, Travis E.; Cottre, Thorsten; Kaiser, Bernhard; Jaegermann, Wolfram; Schlögl, Robert; Teschner, Detre; Strasser, Peter
  • imprint: Walter de Gruyter GmbH, 2020
  • Published in: Zeitschrift für Physikalische Chemie
  • Language: English
  • DOI: 10.1515/zpch-2019-1460
  • ISSN: 2196-7156; 0942-9352
  • Origination:
  • Footnote:
  • Description: <jats:title>Abstract</jats:title> <jats:p>The usage of iridium as an oxygen-evolution-reaction (OER) electrocatalyst requires very high atom efficiencies paired with high activity and stability. Our efforts during the past 6 years in the Priority Program 1613 funded by the Deutsche Forschungsgemeinschaft (DFG) were focused to mitigate the molecular origin of kinetic overpotentials of Ir-based OER catalysts and to design new materials to achieve that Ir-based catalysts are more atom and energy efficient, as well as stable. Approaches involved are: (1) use of bimetallic mixed metal oxide materials where Ir is combined with cheaper transition metals as starting materials, (2) use of dealloying concepts of nanometer sized core-shell particle with a thin noble metal oxide shell combined with a hollow or cheap transition metal-rich alloy core, and (3) use of corrosion-resistant high-surface-area oxide support materials. In this mini review, we have highlighted selected advances in our understanding of Ir–Ni bimetallic oxide electrocatalysts for the OER in acidic environments.</jats:p>