English

Operando XANES from first-principles and its application to iridium oxide

Materials Science 2020-04-22 v1 Chemical Physics Computational Physics

Abstract

Efficient electro-catalytic water-splitting technologies require suitable catalysts for the oxygen evolution reaction (OER). The development of novel catalysts could benefit from the achievement of a complete understanding of the reaction mechanism on iridium oxide (IrO2_2), an active catalyst material that is, however, too scarce for large-scale applications. Considerable insight has already been provided by \emph{operando} X-ray absorption near-edge structure (XANES) experiments, which paved the way towards an atomistic description of the catalyst's evolution in a working environment. We combine here first-principles simulations augmented with a continuum description of the solvent and electrolyte to investigate the electrochemical stability of various IrO2_2 interfaces and to predict the XANES cross-section for selected terminations under realistic conditions of applied potential. The comparison of computed O K-edge XANES spectra to corresponding experiments supports the formation of electron-deficient surface oxygen species in the OER-relevant voltage regime. Furthermore, surface hydroxyl groups that are found to be stable up to \sim1 V are suggested to be progressively oxidized at larger potentials, giving rise to a shift in the Ir L3_3-edge cross-section that qualitatively agrees with measurements.

Keywords

Cite

@article{arxiv.1912.09769,
  title  = {Operando XANES from first-principles and its application to iridium oxide},
  author = {Francesco Nattino and Nicola Marzari},
  journal= {arXiv preprint arXiv:1912.09769},
  year   = {2020}
}
R2 v1 2026-06-23T12:52:18.827Z