September 2026

Journal

Unravelling electro-chemo-mechanical interplay in layered oxide cathode degradation in solid-state batteries

By:
Zheng, Xueli; Xue, Zhichen; Hao, Hongchang; Cho, Yukio; Li, Yuanshun ; Kim, Chanho ; Czaja, Pawel; Lee, Samuel Sanghyun; Bone, Sharon; Sun, Eleanor; Gu, X; Weker, Johanna; Yang, Guang ; Nanda, Jagjit
Journal Name:
Science Advances
Volume:
11
Issue Number:
41
Publication Date:
September 4, 2026
View DOI Listing:
https://doi.org/10.1126/sciadv.ady7189

Abstract

Solid-state batteries (SSBs) hold notable promise for advancing energy storage technologies. However, their commercial viability is limited by the poor cycle stability and complex degradation mechanism. This study underscores the pivotal role of electro-chemo-mechanical interactions in driving the failure of SSBs. Leveraging advanced x-ray imaging and spectroscopy techniques, we analyzed LiNi0.8Mn0.1Co0.1O2 (NMC811) cathodes from cycled LixIn||Li6PS5Cl (LPSC)||NMC811 SSBs, uncovering the interplay between microstructure, chemical heterogeneity, mechanical characteristics, and electrochemical performance. Our results show that revealing electro-chemo-mechanical interactions is essential to develop strategies to suppress the degradation of SSBs. Particularly, we revisit a LiNbO3 (LNO) coating layer to mitigate electrochemical degradation. The LNO@NMC811 cathode retains 116 milliampere-hours per gram after 200 cycles, showing excellent stability, while the uncoated NMC811 cathode keeps degrading over time, with suppressed chemical heterogeneity and mechanical failure. This work highlights the importance of synergizing advanced material design with coating techniques, ensuring uniform lithium flux and improving mechanical properties to achieve stable, high-performance SSBs.


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