Electrostatic Estimation of Intercalant Jump-Diffusion Barriers Using Finite-Size Ion Models
| Date Published |
01/2018
|
|---|---|
| Publication Type | Journal Article
|
| Authors | |
|---|---|
| DOI |
10.1021/acs.jpclett.7b03199
|
| 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. |
| Journal |
The Journal of Physical Chemistry Letters
|
| Volume |
9
|
| Year of Publication |
2018
|
| Issue |
3
|
| Pagination |
628 - 634
|
| ISSN Number |
1948-7185
|
| Short Title |
J. Phys. Chem. Lett.
|
| Refereed Designation |
Refereed
|
| Organizations | |
| Research Areas | |
| Download citation | Google Scholar | DOI | BibTeX | Endnote tagged | RIS |