材料科学
多硫化物
催化作用
阴极
钼
惰性
兴奋剂
二硫化钼
纳米技术
氧化还原
不对称
纳米材料
共价键
化学工程
锂(药物)
电子结构
过渡金属
格子(音乐)
表面工程
无机化学
GSM演进的增强数据速率
硫黄
作者
Xuening Zhao,Zihan Shen,Yunmiao Fan,Wei Liu,Huigang Zhang,Qingshan Zhu
标识
DOI:10.1002/adfm.202531269
摘要
ABSTRACT Lithium–sulfur (Li─S) batteries are hindered by lithium polysulfide (LiPS) shuttling and sluggish redox kinetics, demanding catalysts that both anchor LiPS and accelerate their conversion. Here, we introduce anion‐tailored asymmetry engineering of MoS 2 via controlled Se and Te substitution. The intrinsic size mismatch of S/Se/Te induces lattice and electronic asymmetry, weakening in‐plane covalent bonds and creating localized electronic states. In addition, the dual effects lead to more exposure of additional edge sites and activates inert basal planes, enabling concurrent catalytic activity. Consequently, the optimized MoS 1.75 Te 0.25 –S cathode delivers an initial capacity of 1486.2 mAh g −1 (0.1 C) and 537.6 mAh g −1 (1.0 C) after 3000 cycles and 382.9 mAh g −1 after 3000 cycles at 3.0 C, indicating an ultralow decay rate of 0.012% per cycle. Even at a high sulfur loading, it sustains robust capacity retention, underscoring strong practical promise. These results establish anion‐tailored asymmetry engineering as a generalizable strategy, providing mechanistic insights and design principles for advanced Li─S batteries.
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