ISSN 1608-4039 (Print)
ISSN 1680-9505 (Online)


For citation:

Pilyugina Y. A., Kuzmina E. V., Kolosnitsyn V. S. Hydrolytic and oxidative stability of sulfide solid electrolytes. Electrochemical Energetics, 2025, vol. 25, iss. 2, pp. 68-73. DOI: 10.18500/1608-4039-2025-25-2-68-73, EDN: IZJQDR

This is an open access article distributed under the terms of Creative Commons Attribution 4.0 International License (CC-BY 4.0).
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Language: 
Russian
Article type: 
Article
UDC: 
549.3
EDN: 
IZJQDR

Hydrolytic and oxidative stability of sulfide solid electrolytes

Autors: 
Pilyugina Yulia Alexeevna, Ufa Institute of Chemistry of the Russian Academy of Sciences
Kuzmina Elena Vladimirovna, Ufa Institute of Chemistry of the Russian Academy of Sciences
Kolosnitsyn Vladimir Sergeevich, Institute of Organic Chemistry of the Ufa RAS Scientific Center
Abstract: 

The hydrolytic and oxidative stability of sulfide solid electrolytes Li7P3S11 and Li3PS4 at different humidity of the gas environment (air and argon) was studied. It was found that increasing the air humidity the oxidation rate of sulfide solid electrolytes also increases. It was shown that the oxidation rate of sulfide solid electrolytes depends on their composition. Thus, Li7P3S11 electrolyte has higher oxidation stability in the humid air compared to Li3PS4. Lithium sulfate is the main oxidation product of sulfide solid electrolytes.

Acknowledgments: 
The work was carried out within the framework of the State assignment on the topic of Scientific Research Work of the Institute of Chemistry of the Ufa Federal Research Center of the Russian Academy of Sciences No. 124032600061-3 “Carbon materials and carbon-polymer composites as active components of positive and negative electrodes of promising energy storage devices. Synthesis, structure, properties”.
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Received: 
20.01.2025
Accepted: 
09.06.2025
Published: 
30.06.2025