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April 13, 2026Nano Letters2 citations

Thermal-Induced Reversible Spinel-to-Layered Phase Transition in LiCoO 2 Cathodes

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GWGuangren WangJHJiawei HuangJSJiapeng Song

Key Points

  • This research examines the feasibility of reversing phase transitions in LiCoO2 to enhance battery performance.
  • Investigated the phase transition mechanism through thermal treatment at approximately 300 °C.
  • Utilized combined in situ and ex situ characterization techniques.
  • Analyzed the nucleation-oscillation-aggregation mechanism of the phase transition.
  • The phase transition from spinel to layered phase was successfully achieved at mild temperatures.
  • Phase transition displayed strong anisotropic characteristics propagating from the surface to the bulk.
  • Findings provide insights for advanced synthesis and regeneration strategies in layered oxide cathodes.

Abstract

LiCoO2 (LCO) materials always undergo an irreversible phase transition from the original layered phase (LP) to the electrochemically inert spinel phase (SP) during cycling that severely degrades their performance in lithium-ion batteries. Consequently, the relithiation of SP phase in degraded LCO, or in other words, the reverse SP-to-LP phase transition, is of urgent importance for the community. Herein, we investigate the feasibility and mechanism of thermal-induced relithiation and SP-to-LP transition in LCO. It is revealed that this phase transition occurs at a mild temperature region (∼300 °C). Moreover, the results from combined in situ/ex situ characterization suggest that the SP-to-LP phase transition follows a “nucleation–oscillation–aggregation” mechanism, which showcases a strong anisotropic characteristic while propagating from the surface toward the bulk of particles. These findings provide profound insights into the SP-to-LP phase transition and lay a solid scientific foundation for developing advanced synthesis and regeneration strategies in layered oxide cathodes.

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Cite This Study

Wang et al. (2026) studied this question.

synapsesocial.com/papers/69dc887f3afacbeac03ea581https://doi.org/10.1021/acs.nanolett.6c00877
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