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June 3, 2026physica status solidi (a)0 citationsOpen Access

Phase‐Field Simulation for the Microstructural Evolution of CuPb 2 F 6 During Defluorination

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SZShangping ZhuHAHiroshi AkamineYNYusuke Nagahata

Key Points

  • This research aims to understand how CuPb2F6 changes on a microstructural level during defluorination using simulations.
  • Phase-field simulation combined with a CALPHAD-based thermodynamic database was employed.
  • Nonstoichiometric face-centered-cubic interstitial solid solution (FCC-int) model was used for simulations.
  • Electrochemical measurements were taken at various current densities to assess discharge rates and nucleation density.
  • Simulations captured Cu nanoparticle nucleation and growth, achieving a grain size of approximately 100 nm.
  • Discharge rate correlated with nucleation density and fluorine diffusion coefficient, with faster rates leading to finer Cu nanoparticles.
  • Microstructural changes were governed by the concentration gradient within the FCC-int matrix, influencing nucleation frequency.

Abstract

The microstructural evolution of CuPb 2 F 6 , a cathode material for fluoride‐ion batteries, during defluorination was investigated using phase‐field simulation coupled with a CALPHAD‐based thermodynamic database. By employing a nonstoichiometric face‐centered‐cubic interstitial solid solution (FCC‐int) description, the simulations capture the nucleation and growth of Cu nanoparticles and reproduce the experimentally observed ∼ 100 nm grain size by tuning the effective nucleation density. A strong correlation among discharge rate, nucleation density, and fluorine diffusion coefficient is revealed, demonstrating that faster discharge rates and higher nucleation densities lead to finer Cu nanoparticles. These trends are consistent with electrochemical measurements conducted at different current densities, indicating that Cu grain size is governed by the concentration gradient within the FCC‐int matrix, which controls nucleation frequency and early‐stage growth. This work elucidates the defluorination mechanism of CuPb 2 F 6 and provides a predictive framework for controlling microstructure evolution, offering design guidelines for next‐generation fluoride‐ion batteries.

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Cite This Study

Zhu et al. (2026) studied this question.

synapsesocial.com/papers/6a1fc616dee9eb8c0dce75f5https://doi.org/10.1002/pssa.70389
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