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February 19, 2026Chinese Journal of Chemistry0 citations

Electrochemical‐Mechanical Coupled Model for Macro‐Scale Stress Prediction of Nickel‐Rich NCM Cathodes in Li‐ion Batteries †

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QHQinghe HuXHXingmin ShiFei HeSZShuai Zheng

Key Points

  • The research aims to develop a model that predicts mechanical stress in nickel-rich NCM cathodes during lithium-ion battery cycling.
  • Developed a three-dimensional heterogeneous electrochemical-mechanical coupled model.
  • Simulated the lithiation-induced strain process in NCM materials.
  • Validated the model with experimental results, addressing isotropic simplification of anisotropic particles.
  • Identified mechanical failure locations in NCM particles of varying sizes.
  • Demonstrated macroscopic stress evolution in NCM811 electrodes under cycling conditions.
  • Provided a validated modeling tool to analyze battery behavior through stress signals.

Abstract

Comprehensive Summary Ni‐rich LiNi x Co y Mn z O 2 (NCM) materials are regarded as one of the most promising candidates for next‐generation lithium‐ion batteries due to their high specific capacity. However, their mechanical degradation during cycling leads to significant capacity fading. Electrochemical–mechanical coupled modeling is an effective strategy for understanding the underlying mechanisms of mechanical degradation. Nevertheless, studies involving the simulation and experimental validation of macroscopic electrode stress remain insufficient. This work delineates the multi‐scale lithiation‐induced strain process in NCM materials and establishes a three‐dimensional heterogeneous electrochemical‐mechanical coupled model that successfully predicts the macroscopic stress evolution in NCM811 electrodes. Sufficient physical justification and experimental validation are provided for the isotropic simplification of anisotropic single‐crystal particles. The simulations reveal the rate performance of particles across different sizes, identifying potential locations of mechanical failure. These findings underscore the importance of macroscopic stress signals in reflecting the electrochemical state of electrodes and provide a validated tool for analyzing battery behavior based on stress information.

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Cite This Study

Hu et al. (2026) studied this question.

synapsesocial.com/papers/6996a957ecb39a600b3f05d2https://doi.org/10.1002/cjoc.70492
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