Communications Materials (Jun 2024)

Controlling lithium cobalt oxide phase transition using molten fluoride salt for improved lithium-ion batteries

  • Mayumi Mikami,
  • Jo Saito,
  • Teruaki Ochiai,
  • Masahiro Takahashi,
  • Tatsuyoshi Takahashi,
  • Yohei Momma,
  • Kazutaka Kuriki,
  • Rihito Wada,
  • Kazune Yokomizo,
  • Genki Kobayashi,
  • Shinichi Komaba,
  • Shunpei Yamazaki

DOI
https://doi.org/10.1038/s43246-024-00543-y
Journal volume & issue
Vol. 5, no. 1
pp. 1 – 11

Abstract

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Abstract LiCoO2 is a historic lithium-ion battery cathode that continues to be used today because of its high energy density. However, the practical capacity of LiCoO2 is limited owing to the harmful phase transition at high voltages, which prevents the realization of its theoretical capacity. Here, we treat LiCoO2 particles with a molten salt of MgF2–LiF as a reaction accelerator to facilitate the diffusion and doping of magnesium into bulk LiCoO2 and to form a stable coating layer on the particle surface. Ex situ X-ray diffraction analysis confirms the inhibition of the harmful phase transition and the emergence of a different phase as the modified LiCoO2 was charged up to 4.7 V. The modified LiCoO2 shows high electrochemical performance during high-voltage operation. This technology provides a guideline for the suppressing fundamental degradation associated with phase transition and achieving ultra-high energy density LiCoO2 cathodes.