尖晶石
材料科学
亚稳态
电化学
氧化物
氧化还原
单斜晶系
价(化学)
动力学
相(物质)
化学物理
阴极
锰
化学工程
动能
氧化锰
离解(化学)
电极
工作(物理)
同种类的
电化学储能
无机化学
活化能
析氧
结晶学
电催化剂
固溶体
作者
Young Geol Yu,JinHa Shim,Jin Bae Lee,Jin Ho Bang
出处
期刊:ACS Nano
[American Chemical Society]
日期:2026-08-10
卷期号:20 (32): 22729-22743
标识
DOI:10.1021/acsnano.6c06826
摘要
Controlling transient phase evolution during high-temperature synthesis remains a significant challenge in the development of structurally robust layered oxide cathodes. Here, we demonstrate that the initial manganese oxidation state acts as a decisive structural director for phase bifurcation. Using a precursor-free model platform to decouple intrinsic redox kinetics from structural inheritance, we reveal that lower-valence precursors (Mn2+/Mn3+) kinetically trap the system in a metastable spinel intermediate (Li2Mn2O4). This pathway induces core-shell segregation, sluggish interdiffusion, and defect accumulation, resulting in mechanical fragility and rapid electrochemical degradation. In contrast, starting with Mn4+ stabilizes a structurally coherent monoclinic intermediate (Li2MnO3), which drastically lowers activation energy barriers and enables an energetically favorable topotactic transformation into a robust, homogeneous single-crystalline lattice. Furthermore, we show that introducing excess lithium thermodynamically steers the phase equilibrium of lower-valence precursors toward the layered-compatible Li2MnO3 intermediate, bypassing kinetic bottlenecks to achieve bulk homogenization. By establishing a quantitative, mechanistic link between precursor redox states, transient intermediate chemistry, and final electrochemical performance, this work provides a kinetically guided framework for the precise engineering of advanced energy storage materials.
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