Oxygen Vacancies at Dislocation Core Modulate Plasticity in Strontium Titanate
arXiv:2605.00801 · doi:10.1016/j.actamat.2026.122283
Abstract
Dislocation core chemistry in oxides critically influences mechanical behavior and functionality; yet the evolution of core chemistry during the dislocation motion in them has not been directly observed. Here, using SrTiO3 as a model material, we combine aberration-corrected scanning transmission electron microscopy and electron energy-loss spectroscopy with atomic-level molecular dynamics (MD) simulations to correlate the <110>{1-10} dislocation core structure, oxygen vacancy density, charge state, and mobility with each other. We find that the mechanically induced dislocation loops exhibit dissociated cores, whose oxygen vacancy density depends on the gliding distance: short loops are Ti-reduced and oxygen-deficient at the edge dislocation core, whereas longer loops remain close to stoichiometry in both the edge and screw components. MD simulations reveal that kink-assisted edge dislocation glide in SrTiO3 leaves oxygen-deficient trails behind, modulating the oxygen content inside the edge core. These results demonstrate that oxygen-vacancy evolution at the dislocation core intrinsically couples with plasticity in ionic crystals, suggesting a mechanism for oxygen vacancy-dependent dislocation mobility in plastically deformed oxides.
References in corpus (8)
- SciPy 1.0--Fundamental Algorithms for Scientific Computing in Python
- A ferroelectric quantum phase transition inside the superconducting dome of SrCaTiO
- Superconductivity in dilute SrTiO: a review
- Metallicity and superconductivity in doped strontium titanate
- The nature of deformation-induced dislocations in SrTiO3: Insights from atomistic simulations
- Room-temperature bulk plasticity and tunable dislocation densities in KTaO3
- Room-temperature dislocation plasticity in ceramics: Methods, Materials, and Mechanisms
- Coupled electromigration-nanoindentation study on dislocation nucleation in SrTiO3