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Towards maximized utilization of iridium for the acidic oxygen evolution reaction

  • Marc Ledendecker
  • , Simon Geiger
  • , Katharina Hengge
  • , Joohyun Lim
  • , Serhiy Cherevko
  • , Andrea M. Mingers
  • , Daniel Göhl
  • , Guilherme V. Fortunato
  • , Daniel Jalalpoor
  • , Ferdi Schüth
  • , Christina Scheu
  • , Karl J.J. Mayrhofer
  • Max-Planck-Institut für Eisenforschung GmbH
  • Forschungszentrum Jülich (FZJ)
  • Universidade Federal de Mato Grosso do Sul
  • Max-Planck-Institut Für Kohlenforschung
  • Friedrich Alexander Universität Erlangen-Nürnberg

Research output: Contribution to journalArticlepeer-review

120 Scopus citations

Abstract

The reduction in noble metal content for efficient oxygen evolution catalysis is a crucial aspect towards the large scale commercialisation of polymer electrolyte membrane electrolyzers. Since catalytic stability and activity are inversely related, long service lifetime still demands large amounts of low-abundant and expensive iridium. In this manuscript we elaborate on the concept of maximizing the utilisation of iridium for the oxygen evolution reaction. By combining different tin oxide based support materials with liquid atomic layer deposition of iridium oxide, new possibilities are opened up to grow thin layers of iridium oxide with tuneable noble metal amounts. In-situ, time- and potential-resolved dissolution experiments reveal how the stability of the substrate and the catalyst layer thickness directly affect the activity and stability of deposited iridium oxide. Based on our results, we elaborate on strategies how to obtain stable and active catalysts with maximized iridium utilisation for the oxygen evolution reaction and demonstrate how the activity and durability can be tailored correspondingly. Our results highlight the potential of utilizing thin noble metal films with earth abundant support materials for future catalytic applications in the energy sector. [Figure not available: see fulltext.].

Original languageEnglish
Pages (from-to)2275-2280
Number of pages6
JournalNano Research
Volume12
Issue number9
DOIs
StatePublished - 1 Sep 2019
Externally publishedYes

Keywords

  • catalysis
  • core-shell nanoparticles
  • iridium
  • liquid atomic layer deposition
  • oxygen evolution reaction

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