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March 29, 2026Advanced Materials4 citations

Cavity‐Engineered Polycrystalline Cathodes Resolve Stress Concentration Problem in All‐Solid‐State Lithium Metal Batteries

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THTianpeng HuangYZYue ZhengJMJ. Ma

Key Points

  • The study aims to address the stress concentration problem in ASSLMBs and enhance their performance using cavity-engineered polycrystalline cathodes.
  • Designed cavity-contained polycrystalline Ni-rich cathodes to improve stress distribution.
  • Utilized synchrotron x-ray tomography for structural analysis.
  • Applied multiscale finite element simulations to study mechanical-electrochemical behavior.
  • Central-cavity NCM exhibited superior cycling stability with 86.4% retention after 200 cycles.
  • Compared to traditional NCM, central-cavity design reduced cracking and improved (de)lithiation uniformity.
  • Cavity-free NCM showed only 51.6% stability after 200 cycles, indicating major performance improvements.

Abstract

The development of all-solid-state lithium metal batteries (ASSLMBs) has pushed beyond the energy density limit of conventional liquid systems. However, stress concentration remains a critical yet poorly understood cause of degradation in ASSLMBs, particularly in widely used polycrystalline (PC) Ni-rich cathode systems. Herein, we design cavity-contained PC LiNi0.9Co0.05Mn0.05O2 (NCM) cathode particles to resolve the stress concentration problem in particle-electrode-battery multiscale by bottom-up stress management. Synchrotron x-ray tomography and multiscale finite element simulations disclose the cathode reaction heterogeneity initiates stress concentration and particle-electrode-battery multiscale mechanical-electrochemical degradation. Compared to cavity-free and multi-cavity NCM, central-cavity NCM suppressed cracking within the particles through shortened ionic transport distances and a built-in stress-relief space, enhanced (de)lithiation depth and uniformity at the cathode, reduced porosity and fracture in the electrolyte, and inhibited lithium dendrite formation at the anode, suggesting significantly improved stress uniformity in particle-electrode-battery levels. Consequently, ASSLMBs using the central-cavity NCM deliver a superior cycling stability (86.4% after 200 cycles and 81.5% after 400 cycles), outperforming both the traditional cavity-free NCM (51.6% after 200 cycles) and highly anticipated single crystal NCM (44.2% after 400 cycles). This work links particle-electrode-battery multiscale mechanical-electrochemical behavior, providing valuable insights for designing ASSLMBs with long lifespan from a holistic perspective.

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Cite This Study

Huang et al. (2026) studied this question.

synapsesocial.com/papers/69c8c28cde0f0f753b39cdcahttps://doi.org/10.1002/adma.72940
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