English

Electron Localization Enhances Cation Diffusion in Reduced ZrO2, CeO2 and BaTiO3

Materials Science 2018-08-16 v1

Abstract

According to defect chemistry, the experimental observations of enhanced cation diffusion in a reducing atmosphere in zirconia, ceria and barium titanate are in support of an interstitial mechanism. Yet previous computational studies always found a much higher formation energy for cation interstitials than for cation vacancies, which would rule out the interstitial mechanism. The conundrum has been resolved via first-principles calculations comparing migration of reduced cations and oxidized ones, in cubic ZrO2, CeO2 and BaTiO3. In nearly all cases, reduction alone lowers the migration barrier, and pronounced lowering results if cation's electrostatic energy at the saddle point decreases. The latter is most effectively realized when a Ti cation is allowed to migrate via an empty Ba site thus being fully screened all the way by neighboring anions. Since reduction creates oxygen vacancies as well, which are highly mobile, we also studied their effect on cation migration, and found it only marginally lowers the migration barrier. In several cases, however, a large synergistic effect between cation reduction and oxygen vacancy is revealed, causing an electron to localize in the saddle-point state at a much lower energy than normal, signaling that the saddle point is a negative-U state in which the soft environment enables a large electron-phonon interaction that can over-compensate the on-site Coulomb repulsion. These general findings are expected to be applicable to defect-mediated ion migration in most transitional metal oxides.

Keywords

Cite

@article{arxiv.1808.05198,
  title  = {Electron Localization Enhances Cation Diffusion in Reduced ZrO2, CeO2 and BaTiO3},
  author = {Yanhao Dong and Liang Qi and Ju Li and I-Wei Chen},
  journal= {arXiv preprint arXiv:1808.05198},
  year   = {2018}
}

Comments

arXiv admin note: text overlap with arXiv:1808.05196

R2 v1 2026-06-23T03:34:54.993Z