Lithium ion conductivity in many structural families can be tuned by many orders of magnitude, with some rivaling that of liquid electrolytes at room temperature. Unfortunately, fast lithium conductors exhibit poor stability against lithium battery electrodes. In this article, we report a fundamentally new approach to alter ion mobility and stability against oxidation of lithium ion conductors using lattice dynamics. By combining inelastic neutron scattering measurements with density functional theory, fast lithium conductors were shown to have low lithium vibration frequency or low center of lithium phonon density of states. On the other hand, lowering anion phonon densities of states reduces the stability against electrochemical oxidation. Olivines with low lithium band centers but high anion band centers are promising lithium ion conductors with high ion conductivity and stability. Such findings highlight new strategies in controlling lattice dynamics to discover new lithium ion conductors with enhanced conductivity and stability.

Muy, S., Bachman, J., Giordano, L., Chang, H., Abernathy, D., Bansal, D., et al. (2018). Tuning mobility and stability of lithium ion conductors based on lattice dynamics. ENERGY & ENVIRONMENTAL SCIENCE, 11(4), 850-859 [10.1039/c7ee03364h].

Tuning mobility and stability of lithium ion conductors based on lattice dynamics

Giordano L.;
2018

Abstract

Lithium ion conductivity in many structural families can be tuned by many orders of magnitude, with some rivaling that of liquid electrolytes at room temperature. Unfortunately, fast lithium conductors exhibit poor stability against lithium battery electrodes. In this article, we report a fundamentally new approach to alter ion mobility and stability against oxidation of lithium ion conductors using lattice dynamics. By combining inelastic neutron scattering measurements with density functional theory, fast lithium conductors were shown to have low lithium vibration frequency or low center of lithium phonon density of states. On the other hand, lowering anion phonon densities of states reduces the stability against electrochemical oxidation. Olivines with low lithium band centers but high anion band centers are promising lithium ion conductors with high ion conductivity and stability. Such findings highlight new strategies in controlling lattice dynamics to discover new lithium ion conductors with enhanced conductivity and stability.
Articolo in rivista - Articolo scientifico
Solid State Electrolytes; Lattice dynamics; Li-ion batteries
English
2018
11
4
850
859
open
Muy, S., Bachman, J., Giordano, L., Chang, H., Abernathy, D., Bansal, D., et al. (2018). Tuning mobility and stability of lithium ion conductors based on lattice dynamics. ENERGY & ENVIRONMENTAL SCIENCE, 11(4), 850-859 [10.1039/c7ee03364h].
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/10281/291936
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