English

Computational study of indium oxide photoelectrodes

Materials Science 2025-03-12 v1 Chemical Physics

Abstract

Using a combination of first principles molecular dynamics simulations (FPMD) and electronic structure calculations, we characterize the atomistic structure and vibrational properties of a photocatalytic surface of In2_2O3_3, a promising photoelectrode for the production of hydrogen peroxide. We then investigate the surface in contact with water and show that the electronic states of In2_2O3_3 are appropriately positioned in energy to facilitate the two-electron water oxidation reaction (WOR) over the competing four-electron oxygen evolution reaction. We further propose that the use of strained thin films interfaced with water is beneficial in decreasing the optical gap of In2_2O3_3 and thus utilizing a wider portion of the solar spectrum for the WOR.

Keywords

Cite

@article{arxiv.2503.07795,
  title  = {Computational study of indium oxide photoelectrodes},
  author = {Matthew Bousquet and Jiawei Zhan and Chunxin Luo and Alex B. Martinson and Francois Gygi and Giulia Galli},
  journal= {arXiv preprint arXiv:2503.07795},
  year   = {2025}
}
R2 v1 2026-06-28T22:14:47.473Z