準安定固体電解質が急昇温で合成できる謎を解明~計算科学と先端測定が解き明かす、準安定相の設計原理~

2026-08-31 北海道大学,科学技術振興機構,⼤阪公⽴⼤学,広島大学,高輝度光科学研究センター,東北大学,東京都立大学

北海道大学などの研究グループは、次世代全固体電池の固体電解質Li₃PS₄について、本来480℃以上で安定な高温相α-Li₃PS₄を、急昇温・急冷によって室温に保持できる理由を解明した。第一原理計算とSPring-8での高時間分解能in-situ X線回折を組み合わせた結果、α相は表面エネルギーが極めて低いため、ナノサイズでは中温域でも熱力学的に安定化し、急昇温時に優先的に核生成することが判明した。さらに短時間の加熱で結晶成長を抑制し、その状態を急冷することで準安定相を保持できる。研究では核生成・成長・急冷性を整理した時間-温度-変態(TTT)図を構築し、狙った準安定材料を合理的に設計・合成するための指針を示した。

準安定固体電解質が急昇温で合成できる謎を解明~計算科学と先端測定が解き明かす、準安定相の設計原理~
Li₃PS₄多形体の合成経路を描いた時間-温度-変態(TTT)図

<関連情報>

準安定α-Li₃PS₄の核生成と急冷性を探るための時間-温度-変態図 Time-Temperature-Transformation Diagrams to Navigate the Nucleation and Quenchability of Metastable α-Li₃PS4

Akira Miura,Woohyeon Baek,Yuta Fujii,Kiyoharu Tadanaga,Rana Hossain,Aichi Yamashita,Yoshikazu Mizuguchi,Chikako Moriyoshi,Shintaro Kobayashi,Shogo Kawaguchi,Ding Jiong,Shigeo Mori,Atsushi Sakuda,Akitoshi Hayashi & Wenhao Sun
Nature Communications  Published:22 August 2026
DOI:https://doi.org/10.1038/s41467-026-76661-7  Early provide

Abstract

α-Li₃PS₄ is a promising solid-state electrolyte with the highest ionic conductivity among its polymorphs. However, its formation presents a thermodynamic paradox: the α-phase is the equilibrium phase at high temperature and transforms to the stable γ-Li3PS4 polymorph when cooled to room temperature; however, α-Li3PS4 can be synthesized and quenched in a metastable state via rapid heating at relatively low temperatures. The origin of this synthesizability and anomalous stability has remained elusive. Here, we address this paradox by presenting an experimental and computational time-temperature-transformation (TTT) diagram, constructed from a temperature-size phase diagram and experimental high-time-resolution isothermal measurements. Our density functional theory calculations reveal that at the nanoscale, the α-phase is stabilized by its low surface energy, which drastically lowers its nucleation barrier across a wide temperature range. This size-dependent stabilization is directly visualized using in-situ sub-second synchrotron X-ray diffraction and electron microscopy, capturing the rapid nucleation of nano-sized α-Li3PS4 and its subsequent slow transformation. This work presents a generalizable framework that integrates thermodynamic and kinetic factors for understanding nucleation and phase transformation mechanisms, providing a rational strategy for the targeted synthesis of functional metastable materials.

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