电化学
材料科学
相(物质)
阴极
尖晶石
介电谱
离子
自行车
化学工程
光谱学
活化能
电极
八面体
电压
电子能量损失谱
结构稳定性
化学
纳米技术
化学物理
作者
Peng Zuo,Daniel P. Abraham,Chongmin Wang
摘要
ABSTRACT Electrochemical activation is a critical step for optimal functioning of Li‐ and Mn‐rich (LMR) cathodes, yet the underlying mechanism for such activation remains elusive. Here, by using scanning/transmission electron microscopy (S/TEM) combined with the associated energy‐dispersive x‐ray spectroscopy (EDS) and electron energy‐loss spectroscopy (EELS), we decipher the origin of the activation enhanced electrochemical properties. We reveal that activation induces the formation of a spinel‐like phase within the C2/m domains of the LMR cathode, where the transition‐metal ions partially occupy both the tetrahedral (8a) and octahedral (16c) sites of the Fd m spinel lattice, distinguishing the spinel‐like phase from the conventional high‐voltage spinel. Systematic varying the cycling voltage reveals a critical activation voltage above which this spinel‐like phase forms, while lower voltages preserve the layered bulk structure. As the spinel‐like phase is a stable structure for electrochemical cycling, the present findings provide direct mechanistic insight into the voltage‐dependent activation process and explain how the C2/m to spinel‐like transformation upon activation contributes to the electrochemical performance of LMR cathodes, providing guidance for the rational design of Li‐rich cathodes with enhanced cycling durability.
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