材料科学
冶金
相(物质)
电池(电)
曲面(拓扑)
复合材料
涂层
分离(统计)
工作(物理)
组分(热力学)
作者
Peter Benedek,Xueyan Zhao,Emanuel Rudolf Bileter,A. Moser,Ola Kenji Forslund,Nami Matsubara,Elisabetta Nocerino,Stephen P. Cottrell,Marisa Medarde,Y. Sassa,Ramesh Shunmugasundaram,Thomas F. Jaramillo,Andreas Borgschulte,Fanni Jurànyi,Martin Må̊nsson,Vanessa Claire Wood
出处
期刊:Matter
[Elsevier BV]
日期:2026-03-27
卷期号:9 (6): 102725-102725
标识
DOI:10.1016/j.matt.2026.102725
摘要
To achieve long-lasting, high-performance lithium-ion batteries, local inhomogeneity in current density must be avoided. One driver of such inhomogeneity is the spinodal decomposition of active materials into Li-rich and Li-poor phases during charge and discharge, respectively. Whether or not such phase separation occurs is linked to the dynamics of lithium (Li) at the active material surface and within its bulk. Here, we show that particle surface coatings can be designed to inhibit phase separation. Using LiFePO 4 as a model system, we prepare particles with different coatings in order to tune Li dynamics and electronic structure and thereby induce or prevent phase separation, which we verify through experiment and ab initio calculations. We then leverage our findings to create a mixed ceramic-carbon coating that mitigates phase separation down to rates as low as 0.1C and simultaneously enables fast (dis)charge up to 5C.
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