Issue 32, 2024

Influence of misfit dislocations on ionic conductivity at oxide interfaces

Abstract

Mismatched complex oxide thin films and heterostructures have gained significant traction for use as electrolytes in intermediate temperature solid oxide fuel cells, wherein interfaces exhibit variation in ionic conductivity as compared to the bulk. Although misfit dislocations present at interfaces in these structures impact ionic conductivity, the fundamental mechanisms responsible for this effect are not well understood. To this end, a kinetic lattice Monte Carlo (KLMC) model was developed to trace oxygen vacancy diffusion at misfit dislocations in SrTiO3/BaZrO3 heterostructures and elucidate the atomistic mechanisms governing ionic diffusion at oxide interfaces. The KLMC model utilized oxygen vacancy migration energy barriers computed using molecular statics. While some interfaces promote oxygen vacancy diffusion, others impede their transport. Fundamental factors such as interface layer chemistry, misfit dislocation structure, and starting and ending sites of migrating ions play a crucial role in oxygen diffusivity. Molecular dynamics (MD) simulations were further performed to support qualitative trends for oxygen vacancy diffusion. Overall, the agreement between KLMC and MD is quite good, though MD tends to predict slightly higher conductivities, perhaps a reflection of nuanced structural relaxations that are not captured by KLMC. The current framework comprising KLMC modeling integrated with molecular statics offers a powerful tool to perform mechanistic studies focused on ionic transport in thin film oxide electrolytes and facilitate their rational design.

Graphical abstract: Influence of misfit dislocations on ionic conductivity at oxide interfaces

Supplementary files

Article information

Article type
Paper
Submitted
27 Mar 2024
Accepted
08 Jul 2024
First published
09 Jul 2024
This article is Open Access
Creative Commons BY-NC license

J. Mater. Chem. A, 2024,12, 21252-21267

Influence of misfit dislocations on ionic conductivity at oxide interfaces

W. Ebmeyer, P. Hatton, B. P. Uberuaga and P. P. Dholabhai, J. Mater. Chem. A, 2024, 12, 21252 DOI: 10.1039/D4TA02034K

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