材料科学
磷化物
电催化剂
多硫化物
吸附
催化作用
化学工程
锂(药物)
金属
纳米技术
扩散
过渡金属
动力学
金属锂
无机化学
储能
电导率
活化能
电化学
作者
Manchuan Guo,Haici Deng,Yuanfei Yi,Jin Guo,Gangsheng Zhang,Yanqiu Zhu,Jinliang Zhu
摘要
ABSTRACT Lithium–sulfur (Li–S) batteries are emerging next‐generation energy storage systems, yet their development is hindered by the shuttle effect and sluggish conversion kinetics of lithium polysulfides (LiPSs). In this study, a thermal treatment strategy is proposed for synthesizing high‐entropy metal phosphide (Co 0.60 Ni 0.23 Cu 0.30 Mn 0.24 Mo 0.63 P, HEMP). The as‐prepared HEMP material shows a low energy barrier for Li + diffusion, favorable electronic conductivity, and strong adsorption to LiPS intermediates. Owing to these unique properties, the HEMP/C@S coin cell exhibits an outstanding initial specific capacity of 1339.2 mAh g −1 at 0.2C, and the HEMP/C@S pouch cell achieves a superior energy density of 441.3 Wh kg −1 . In situ experimental and modelling techniques reveal that the superior catalytic performance originates from: (1) The synergistic interplay among the five metal constituents, with d‐orbital interactions broadening the electronic state distribution and elevating the d‐band center, thus enhancing the conductivity of HEMP and its adsorption capability toward LiPSs; (2) The lattice distortion induced by atomic size differences, which exposes abundant active sites and lowers Li + diffusion energy barrier. The approach based on entropy‐driven engineered d‐orbital interactions provides valuable insights into the development of LiPSs catalysts for high‐performance Li–S batteries.
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