Realizing long-cycling silicon-based all-solid-state batteries with near-zero-stress variation

Silicon anodes present a compelling alternative to lithium metal for all-solid-state batteries (ASSBs), offering high capacity without dendrite risks. However, their application is hindered by incomplete understanding of electro-chemo-mechanical (ECM) failure mechanisms in all-solid-state configurations. Through multiple in situ characterizations combining optical microscopy, atomic force microscopy, and pressure monitoring, this work uncovers fundamental stress-mediated degradation pathways in silicon-based ASSBs. Stress evolution-particularly in-plane strain mismatch and out-of-plane mechanical constraints-governs the dominant failure criterion, superseding traditional volume change metrics. This stress-dominated mechanism arises from the interplay between volume and modulus in constrained all-solid-state systems. Guided by these insights, complementary mitigation strategies were developed, including electrode/electrolyte modulus engineering to reduce interfacial stresses and elastic constraint design to accommodate mechanical fluctuations. The synergistic implementation achieves near-zero stress variation and breakthrough cycling stability (90.1% capacity retention after 5000 cycles). This work establishes a paradigm for high-energy-density batteries, shifting the design focus from volume accommodation to comprehensive stress management in all-solid-state systems.

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Publication Details

Journal
Science Advances
Published
2026-08-26
DOI
https://doi.org/10.1126/sciadv.aef3043
Primary Topic
Advanced Battery Materials and Technologies
Type
article
Field-Weighted Citation Impact
0.00

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article

Realizing long-cycling silicon-based all-solid-state batteries with near-zero-stress variation

Sen Xin, Rui Wen, Xusheng Zhang, Shuang‐Yan Lang et al.
Science Advances
Advanced Battery Materials and Technologies
article

Realizing long-cycling silicon-based all-solid-state batteries with near-zero-stress variation

Sen Xin, Rui Wen, Xusheng Zhang, Shuang‐Yan Lang, Yujie Wei, Jianxin Tian, Yu‐Guo Guo, Zehui Zhang, Wenpeng Wang, Ruizhi Liu, Zhenzhen Shen, Li-Jun Wan, Jici Wen, Kai-Xiang Zhou, Xin Zhang, Jian-Xin Tian, Zehui Zhang, Kai-Xiang Zhou, Zhen-Zhen Shen, Xin Zhang
article en

Abstract

Silicon anodes present a compelling alternative to lithium metal for all-solid-state batteries (ASSBs), offering high capacity without dendrite risks. However, their application is hindered by incomplete understanding of electro-chemo-mechanical (ECM) failure mechanisms in all-solid-state configurations. Through multiple in situ characterizations combining optical microscopy, atomic force microscopy, and pressure monitoring, this work uncovers fundamental stress-mediated degradation pathways in silicon-based ASSBs. Stress evolution-particularly in-plane strain mismatch and out-of-plane mechanical constraints-governs the dominant failure criterion, superseding traditional volume change metrics. This stress-dominated mechanism arises from the interplay between volume and modulus in constrained all-solid-state systems. Guided by these insights, complementary mitigation strategies were developed, including electrode/electrolyte modulus engineering to reduce interfacial stresses and elastic constraint design to accommodate mechanical fluctuations. The synergistic implementation achieves near-zero stress variation and breakthrough cycling stability (90.1% capacity retention after 5000 cycles). This work establishes a paradigm for high-energy-density batteries, shifting the design focus from volume accommodation to comprehensive stress management in all-solid-state systems.

Science AdvancesVol. 12(35)
Beijing National Laboratory for Molecular Sciences (CN), Institute of Mechanics (CN), University of Chinese Academy of Sciences (CN)
National Natural Science Foundation of China, National Key Research and Development Program of China
Openalex Percentile: Top 19%
Advanced Battery Materials and Technologies
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