English

Strain engineering of oxide thin films for photocatalytic applications

Materials Science 2019-09-04 v1 Mesoscale and Nanoscale Physics

Abstract

Photocatalytic materials are pivotal for the implementation of disruptive clean energy applications such as conversion of H2_{2}O and CO2_{2} into fuels and chemicals driven by solar energy. However, efficient and cost-effective materials able to catalyze the chemical reactions of interest when exposed to visible light are scarce due to the stringent electronic conditions that they must satisfy. Chemical and nanostructuring approaches are capable of improving the catalytic performance of known photoactive compounds however the complexity of the synthesized nanomaterials and sophistication of the employed methods make systematic design of photocatalysts difficult. Here, we show by means of first-principles simulation methods that application of biaxial stress, η\eta, on semiconductor oxide thin films can modify their optoelectronic and catalytic properties in a significant and predictable manner. In particular, we show that upon moderate tensile strains CeO2_{2} and TiO2_{2} thin films become suitable materials for photocatalytic conversion of H2_{2}O into H2_{2} and CO2_{2} into CH4_{4} under sunlight. The band gap shifts induced by η\eta are reproduced qualitatively by a simple analytical model that depends only on structural and dielectric susceptibility changes. Thus, epitaxial strain represents a promising route for methodical screening and rational design of photocatalytic materials.

Keywords

Cite

@article{arxiv.1909.00979,
  title  = {Strain engineering of oxide thin films for photocatalytic applications},
  author = {Zhao Liu and Joel Shenoy and Cesar Menéndez and Judy N. Hart and Charles C. Sorrell and Claudio Cazorla},
  journal= {arXiv preprint arXiv:1909.00979},
  year   = {2019}
}