Mechanistic insights into oxygen reduction reaction on metal/perovskite catalysts: Interfacial interactions and reaction pathways

Wenhao Li, Vadym Drozd, Md Shariful Islam Sozal, Meng Li, Zhe Cheng

Research output: Contribution to journalArticlepeer-review

Abstract

The oxygen reduction reaction (ORR) is a critical process in energy conversion systems, influencing the efficiency and performance of various devices such as fuel cells, batteries, and electrolyzers. Perovskite-supported metal materials (metal/perovskite) offer several advantages as ORR electrocatalysts, including strong metal-support interactions, oxygen vacancy formation in the perovskite lattice, and synergistic triple-phase boundary (TPB) activity at the interface. Despite their significance, the mechanistic understanding of ORR on metal/perovskite catalysts remains incomplete, particularly at metal/perovskite interfaces. This study investigates ORR on BaZrO3 (BZO) perovskite-supported metal clusters (Pt or Ag) using density functional theory (DFT) to unravel critical insights into charge redistribution at the metal/BZO interface. Energy profiles for elemental steps along two different ORR pathways—oxygen adsorption on the metal cluster surface and direct oxygen adsorption at the TPB—were calculated to explore the effects of different active sites. The results provide a deeper understanding of ORR on metal/perovskite catalysts, emphasizing the role of interfacial interactions and pathway-dependent reaction mechanisms. This work paves the way for guiding the design of high-performance electrocatalysts for ORR in terms of composition, interface design, and local environment modification for a broad range of energy applications.

Original languageEnglish
Article number116808
JournalSolid State Ionics
Volume421
Early online dateFeb 15 2025
DOIs
StatePublished - Mar 2025

Keywords

  • Charge redistribution
  • DFT
  • Interfacial interactions
  • Metal/perovskite catalysts
  • Oxygen reduction reaction

INL Publication Number

  • INL/JOU-25-83393
  • 196402

Fingerprint

Dive into the research topics of 'Mechanistic insights into oxygen reduction reaction on metal/perovskite catalysts: Interfacial interactions and reaction pathways'. Together they form a unique fingerprint.

Cite this