Phase Transition of Li3PO4 Solid Electrolyte for Secondary Batteries in Vacuum: A Real-Time Synchrotron X-ray Scattering Study

The phase transition of Li3PO4 solid electrolyte for secondary batteries in vacuum has been studied by using real-time synchrotron X-ray scattering. According to the vacuum heating results, the crystal β-Li3PO4 phase was stable only from room temperature to 400°C. The crystal γ-Li3PO4 phase appeared at 410°C and the crystal β-Li3PO4 phase completely disappeared at 430°C. The transition from the β-Li3PO4 to the γ-Li3PO4 phases occurred primarily at 410°C, which is 40°C lower than the transition temperature of 450°C in air. The decrease in the phase transition temperature in vacuum, compared to that in air, is attributed to a relatively high concentration of oxygen vacancies. As the isothermal annealing time at 390°C was increased to 8 hours, the β-Li3PO4 phase was completely transitioned into the γ-Li3PO4 phase. Our study revealed the detailed transition behavior from the β-Li3PO4 to the γ-Li3PO4 phases during real-time annealing in vacuum.

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Publication Details

Journal
Journal of the Korean Institute of Electrical and Electronic Material Engineers
Published
2026-09-01
DOI
https://doi.org/10.4313/jeem.2026.39.5.5
Primary Topic
Advanced Battery Materials and Technologies
Type
article
Field-Weighted Citation Impact
0.00

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article

Phase Transition of Li3PO4 Solid Electrolyte for Secondary Batteries in Vacuum: A Real-Time Synchrotron X-ray Scattering Study

Seung‐Han Lee, Dong-hyeon Shin, T. S. Cho
Journal of the Korean Institute of Electrical and Electronic Material Engineers
Advanced Battery Materials and Technologies
article

Phase Transition of Li3PO4 Solid Electrolyte for Secondary Batteries in Vacuum: A Real-Time Synchrotron X-ray Scattering Study

Seung‐Han Lee, Dong-hyeon Shin, T. S. Cho
article en

Abstract

The phase transition of Li3PO4 solid electrolyte for secondary batteries in vacuum has been studied by using real-time synchrotron X-ray scattering. According to the vacuum heating results, the crystal β-Li3PO4 phase was stable only from room temperature to 400°C. The crystal γ-Li3PO4 phase appeared at 410°C and the crystal β-Li3PO4 phase completely disappeared at 430°C. The transition from the β-Li3PO4 to the γ-Li3PO4 phases occurred primarily at 410°C, which is 40°C lower than the transition temperature of 450°C in air. The decrease in the phase transition temperature in vacuum, compared to that in air, is attributed to a relatively high concentration of oxygen vacancies. As the isothermal annealing time at 390°C was increased to 8 hours, the β-Li3PO4 phase was completely transitioned into the γ-Li3PO4 phase. Our study revealed the detailed transition behavior from the β-Li3PO4 to the γ-Li3PO4 phases during real-time annealing in vacuum.

Journal of the Korean Institute of Electrical and Electronic Material EngineersVol. 39(5)
Kyungpook National University (KR)
Kyungpook National University
Openalex Percentile: Top 20%
Advanced Battery Materials and Technologies
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Phase Transition of Li3PO4 Solid Electrolyte for Secondary Batteries in Vacuum: A Real-Time Synchrotron X-ray Scattering Study — Seung‐Han Lee, Dong-hyeon Shin, et al. · Journal of the Korean Institute of Electrical and Electronic Material Engineers (2026) | TGRS Research Map | TGRS