Unraveling the electronic control of hydride-ion diffusivity in oxyhydrides from model studies on BaTiO3−2xHx□x
Journal article, 2025

Mixed hydride–electronic conductors are technologically important materials, but the mechanism of hydride-ion diffusivity is generally not fully understood. The diffusivities of hydride-ions and oxygen vacancies are closely related because hydride-ions are accommodated in oxygen vacancies, and a neighbouring oxygen vacancy is required for the inter-site migration of a hydride-ion. Here, we investigate the impact of electron localization in the hydride-ion-accepting oxygen vacancy on the inter-site hydride-ion migration dynamics in the perovskite-type oxyhydride BaTiO3−2xHx□x (where □ denotes oxygen vacancies) using density functional theory (DFT). Supercell calculations were designed to model two (VxO), one (VO), and zero (V●●O) electrons localized in the hydride-ion-accepting site and correspondingly, zero, one, and two electrons delocalized in the conduction band formed from the Ti4+ 3d orbitals. It is found that the trapping of electrons causes the activation energy for inter-site migration to increase from 0.29 eV for V●●O, to 0.39 eV for VO, to 0.60 eV when VO turns into V●●O during the migration, and to 0.83 eV for VxO. In an analogous way, the mobility of oxygen vacancies becomes increasingly hindered with increased electron occupation in the vacancies. This suggests that the tailoring of the degree of electron localization by, e.g., bandgap engineering or the introduction of electron trapping impurity states may be effective in tuning the hydride-ion conductivity in oxyhydrides, not limited to BaTiO3−2xHx□x.

Author

Lucas Fine

Chalmers, Chemistry and Chemical Engineering, Energy and Material

Institut Laue-Langevin

Maths Karlsson

Chalmers, Chemistry and Chemical Engineering, Energy and Material

Itai Panas

Chalmers, Chemistry and Chemical Engineering, Energy and Material

Michael Marek Koza

Institut Laue-Langevin

Materials Advances

26335409 (eISSN)

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Subject Categories (SSIF 2025)

Materials Chemistry

Condensed Matter Physics

Areas of Advance

Materials Science

DOI

10.1039/d5ma00521c

Related datasets

Data for: Unraveling the Electronic Control of Hydride Diffusivity in Oxyhydrides from Model Studies on BaTiO3−xHy [dataset]

DOI: https://doi.org/10.71870/x76p-bp52

More information

Latest update

10/24/2025