阴极
电化学
材料科学
兴奋剂
降级(电信)
热的
氧化物
纳米技术
光电子学
热稳定性
温度循环
化学工程
淡出
电极
表面工程
热处理
作者
Leqi Zhao,Zezhou Lin,Yijun Zhong,Hanwen Liu,Xiao Sun,Yucheng Huang,William D.A. Rickard,Tony P. Tang,Zongping Shao
标识
DOI:10.1016/j.matre.2025.100378
摘要
Ni-rich LiNi 0.8 Mn 0.1 Co 0.1 O 2 (NCM) cathodes in layered oxide cathodes are attractive for high-energy lithium-ion batteries but suffer from rapid capacity fade and thermal instability at high charge voltages. In this study, we propose an entropy-assisted multi-element doping strategy to mitigate these issues. Specifically, two routes are designed and compared: bulk-like localized high-entropy doping (BHE-NCM) and surface-distributed high-entropy-zone doping (SHE-NCM). The surface entropy-doped NCM cathode delivers enhanced electrochemical performance, including higher capacity retention under 4.5 V cycling and superior rate capability, compared to both bulk-like and pristine counterparts. Comprehensive material characterization reveals that surface-localized doping stabilizes the layered structure with reduced microcrack formation and creates a uniform dopant-rich surface region with improved thermal and electrochemical stability. Overall, entropy-assisted doping at the near surface zone effectively alleviates structural degradation and interface reactions in Ni-rich NCM, enabling improved cycling performance at high voltage. This work highlights the significance of surface entropy engineering as a promising strategy for designing high-voltage cathodes with improved safety and longevity.
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