Journal article

Unravelling Charge Carrier Mobility in d(0)-Metal-based Spinels


Authors listDillenz, M; Sotoudeh, M; Glaser, C; Janek, J; Gross, A; Euchner, H

Publication year2022

JournalBatteries & Supercaps

Volume number5

Issue number7

eISSN2566-6223

DOI Linkhttps://doi.org/10.1002/batt.202200164

PublisherWiley


Abstract
Enabling high Mg ion mobility, spinel-type materials are promising candidates for cathode or solid electrolyte applications. To elucidate the factors governing the observed high mobility of multivalent ions, periodic DFT calculations of various charge carriers (A=Li, Na, K, Mg, Ca, Zn and Al) in the ASc(2)S(4) and ASc(2)Se(4) spinel compounds were performed, resulting in the identification of a Bronsted-Evans-Polanyi-type scaling relation for the migration barriers of the various charge carriers. Combining this scaling relation with the derivation of a descriptor, solely based on easily accessible observables, constitutes a conceptual framework to investigate ion mobility in d(0)-metal-based spinel chalcogenides with significantly reduced computational effort. This approach was exemplarily verified for various d(0)-metal-based spinel chalcogenide compounds AB(2)X(4) (B=Sc, Y, Ga, In, Er and Tm; X=O, S and Se) and led to the identification of d(0)-metal-based CaB2O4 spinels as promising compounds possibly enabling high Ca ion mobility.



Citation Styles

Harvard Citation styleDillenz, M., Sotoudeh, M., Glaser, C., Janek, J., Gross, A. and Euchner, H. (2022) Unravelling Charge Carrier Mobility in d(0)-Metal-based Spinels, Batteries & Supercaps, 5(7), Article e202200164. https://doi.org/10.1002/batt.202200164

APA Citation styleDillenz, M., Sotoudeh, M., Glaser, C., Janek, J., Gross, A., & Euchner, H. (2022). Unravelling Charge Carrier Mobility in d(0)-Metal-based Spinels. Batteries & Supercaps. 5(7), Article e202200164. https://doi.org/10.1002/batt.202200164


Last updated on 2025-21-05 at 16:52