材料科学
阴极
降级(电信)
氧化物
相间
纳米尺度
压扁
化学工程
相(物质)
纳米技术
渗透(认知心理学)
钠
原位
曲面(拓扑)
纳米颗粒
化学稳定性
不稳定性
纳米-
工作(物理)
化学物理
空位缺陷
化学
作者
Zhiqi Yang,Yi Li,Yali Liang,Yuesheng Wang,Qin Chen,Peng Ouyang,Yifan He,Ganxiong Liu,Jiwei Ma,Hui Yang,Yongfu Tang,Yunhui Huang,Chao Wang
摘要
ABSTRACT O3‐type layered oxide cathodes suffer from surface chemical instability and sluggish Na + transport within the O‐type framework, limitations that are aggravated by humid‐air exposure and fast‐charging operation, leading to severe interfacial degradation and rapid capacity decay. Herein, we propose a mild ethylene‐glycol–assisted treatment that in situ constructs a coherent surface‐to‐bulk architecture within NaNi 1/3 Fe 1/3 Mn 1/3 O 2 (NFM) particles, comprising a nanoscale surface rock‐salt layer, a depth‐dependent Na‐vacancy gradient, and a Na‐deficient bulk. This hierarchical configuration locks the surface chemistry while opening continuous Na + percolation pathways across the surface–bulk junction, thereby flattening radial (de)sodiation heterogeneity and steering a more uniform, highly reversible phase evolution during prolonged cycling. As a result, the modified sample exhibits outstanding fast‐charging performance, delivering 107.6 mAh g −1 at 5C (600 mA g −1 ) with 81.6% capacity retention after 400 cycles. This work highlights gradient interphase coupled with Na‐vacancy engineering as an effective strategy to develop high‐performance layered oxide cathodes for sodium‐ion batteries.
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