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Updated: Jun 13, 2026

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Published on: November 11, 2013
Improved Air Stability of Li Argyrodites Through PS4 3- Rotation Suppression by Al and Se Co-Substitution for
Juhyoun Park1, Jihun Lee1, Yoon-Seong Kim2
1Department of Chemical and Biomolecular Engineering, Yonsei University, Seoul, 03722, Republic of Korea.
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Sulfide-based solid electrolytes, particularly Li argyrodites, hold significant promise for practical all-solid-state batteries (ASSBs); however, their poor stability under humid conditions presents a critical challenge. Despite numerous efforts to address this issue, a comprehensive mechanistic understanding of moisture-induced degradation remains limited. Herein, we introduce an Al and Se co-substituted argyrodite, Li6-3 xAlxPS5-1.5 xSe1.5 xCl, which enhances both the Li+ conductivity and air stability. The optimized composition (x = 0.05) exhibits an improved Li+ conductivity of 4.91 mS cm-1 at 30 °C and a 22% conductivity reduction after dry-air exposure (dew point: -40 °C for 5 h), compared with 3.71 mS cm-1 and a 42% decrease for the unsubstituted sample. Reduced surface degradation is validated by comprehensive experimental analyses. Complementary calculations indicate less favorable H2O adsorption and further reveal that Al and Se co-substitution inhibits the rotation of P[S2SeO]3- and P[S2O2]3-; tetrahedra via preferential surface-oriented Se2- and Al─O interactions, which otherwise promote H2O-induced degradation, thereby minimizing moisture interactions. Finally, the improved electrochemical performance of the co-substituted argyrodite is validated by its enhanced capacity retention following air exposure in NCM|Li6PS5Cl|(Li-In) cells. This study highlights rotational dynamics as an overlooked mechanism underlying moisture-induced degradation, and demonstrates that targeted co-substitution is a viable strategy for advancing practical ASSBs.

