磷化物
钴
锂(药物)
硫黄
空位缺陷
离子
碳纤维
壳体(结构)
无机化学
化学
材料科学
催化作用
有机化学
结晶学
复合数
复合材料
内分泌学
医学
作者
Baihui Chen,Lirong Zhang,Ye Tao,Jingui Han,Di Wang,Han Wang,Lili Wu,Xinzhi Ma,Xitian Zhang
标识
DOI:10.1016/j.jcis.2025.137563
摘要
The widespread adoption of lithium-Sulfur (Li-S) batteries is significantly hindered by the well-known "shuttle effect" and the sluggish conversion kinetics of sulfur species. In this study, cobalt phosphide (CoP) nanoparticles are engineered with phosphorus vacancies (Pv) and a carbon shell (CoPv@C) to effectively anchor polysulfides (LiPSs) and promote their conversion. The introduction of Pv notably enhances the binding energy between CoP and LiPSs, facilitating the subsequent cleavage of the SS bond in the Li2S6 molecule. The carbon shell further aids in the chemical adsorption of LiPSs by generating a space charge region, while simultaneously shielding CoP nanoparticles from direct exposure to oxidative conditions during charge/discharge cycles. On the surface of CoPv@C nanofibers, the nucleation of Li2S exhibits rapid liquid-solid conversion dynamics, adhering to a three-dimensional progressive nucleation model. Consequently, in our case, Li-S batteries assembled with CoPv@C-modified separators exhibit an initial capacity of 1,536 mAh g-1 at 0.1 C. Significantly, Li-S batteries can afford 4 C discharge/charge along with a superior 0.019 % decline rate. These findings position CoPv@C nanofibers as a promising material for advanced Li-S batteries and offer novel insights into the design of electrocatalysts and separator engineering for high-performance Li-S batteries.
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