Abstract
We report on a scheme for estimating intercalant jump-diffusion barriers that are typically obtained from demanding density functional theory-nudged elastic band calculations. The key idea is to relax a chain of states in the field of the electrostatic potential that is averaged over a spherical volume using different finite-size ion models. For magnesium migrating in typical intercalation materials such as transition-metal oxides, we find that the optimal model is a relatively large shell. This data-driven result parallels typical assumptions made in models based on Onsager's reaction field theory to quantitatively estimate electrostatic solvent effects. Because of its efficiency, our potential of electrostatics-finite ion size (PfEFIS) barrier estimation scheme will enable rapid identification of materials with good ionic mobility.
Cite
CITATION STYLE
Zimmermann, N. E. R., Hannah, D. C., Rong, Z., Liu, M., Ceder, G., Haranczyk, M., & Persson, K. A. (2018). Electrostatic Estimation of Intercalant Jump-Diffusion Barriers Using Finite-Size Ion Models. Journal of Physical Chemistry Letters, 9(3), 628–634. https://doi.org/10.1021/acs.jpclett.7b03199
Register to see more suggestions
Mendeley helps you to discover research relevant for your work.