Combined effect of high voltage and large Li-ion flux on decomposition of Li6PS5Cl

Abstract

High voltage has been considered the primary factor causing electrolyte decomposition in all-solid-state lithium batteries. However, whether high voltage is the only decisive factor in sulfide electrolyte decomposition is an open question. Herein, we redefined the decomposition conditions of sulfide electrolytes under the combined effect of high voltage (≥5 V vs. Li+/Li) and large Li+ flux by recording the decomposition process of Li6PS5Cl via in situ Raman spectroscopy during cyclic voltammetry measurement. The result shows that under the combined action of high voltage and large Li+ flux, PS43− anions of Li6PS5Cl undergo much more severe deformation and decomposition than they do only at high voltage or large Li+ flux. At the same time, it also suggests that the much severe decomposition of Li6PS5Cl located near the surface of cathode particles compared to that in the bulk region of Li6PS5Cl may be the combined result of electrochemical/chemical reactions and high voltage/large Li+ flux. Furthermore, the effect of large Li+ flux on the irreversible decomposition of Li6PS5Cl supplements our understanding of the electrochemical stability of solid electrolytes. This work redefines the stability of sulfide electrolyte and gives directions to design highly stable bulk and interfacial structures of sulfide electrolytes at high voltage and high current density.

Graphical abstract: Combined effect of high voltage and large Li-ion flux on decomposition of Li6PS5Cl

Supplementary files

Article information

Article type
Edge Article
Submitted
14 Meu 2025
Accepted
05 Me 2025
First published
05 Me 2025
This article is Open Access

All publication charges for this article have been paid for by the Royal Society of Chemistry
Creative Commons BY-NC license

Chem. Sci., 2025, Advance Article

Combined effect of high voltage and large Li-ion flux on decomposition of Li6PS5Cl

D. Sun, W. Li, Y. Wang, J. Ju, P. Han, S. Dong, J. Ma and G. Cui, Chem. Sci., 2025, Advance Article , DOI: 10.1039/D5SC02018B

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