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用于锂硫电池中高性能硫固定剂的组合有序宏观-介孔结构设计与表面工程策略

A Combined Ordered Macro-Mesoporous Architecture Design and Surface Engineering Strategy for High-Performance Sulfur Immobilizer in Lithium-Sulfur Batteries.

作者信息

Liu Guihua, Luo Dan, Gao Rui, Hu Yongfeng, Yu Aiping, Chen Zhongwei

机构信息

Tianjin Key Laboratory of Chemical Process Safety, School of Chemical Engineering and Technology, Hebei University of Technology, Tianjin, 300130, China.

Department of Chemical Engineering, University of Waterloo, Waterloo, Ontario, N2L 3G1, Canada.

出版信息

Small. 2020 Sep;16(37):e2001089. doi: 10.1002/smll.202001089. Epub 2020 Aug 9.

Abstract

The practical application of lithium-sulfur (Li-S) batteries is hindered by the "shuttle" of lithium polysulfides (LiPS) and sluggish Li-S kinetics issues. Herein, a synergistic strategy combining mesoporous architecture design and defect engineering is proposed to synthesize multifunctional defective 3D ordered mesoporous cobalt sulfide (3DOM N-Co S ) to address the shuttling and sluggish reaction kinetics of polysulfide in Li-S batteries. The unique 3DOM design provides abundant voids for sulfur storage and enlarged active interfaces that reduce electron/ion diffusion pathways. Meanwhile, X-ray absorption spectroscopy shows that the surface defect engineering tunes the CoS tetrahedra to CoS octahedra on Co S , endowing abundance of S vacancies on the Co S octahedral sites. The ever-increasing S vacancies over the course of electrochemical process further promotes the chemical trapping of LiPS and its conversion kinetics, rendering fast and durable Li-S chemistry. Benefiting from these features, the as-developed 3DOM N-Co S /S cathode delivers high areal capacity, superb rate capability, and excellent cyclic stability with ultralow capacity fading rate under raised sulfur loading and low electrolyte content. This design strategy promotes the development of practically viable Li-S batteries and sheds lights on the material engineering in related energy storage application.

摘要

锂硫(Li-S)电池的实际应用受到多硫化锂(LiPS)“穿梭效应”和缓慢的锂硫动力学问题的阻碍。在此,提出了一种将介孔结构设计与缺陷工程相结合的协同策略,以合成多功能缺陷三维有序介孔硫化钴(3DOM N-Co S ),解决Li-S电池中多硫化物的穿梭效应和缓慢的反应动力学问题。独特的3DOM设计为硫储存提供了丰富的孔隙,并扩大了活性界面,减少了电子/离子扩散路径。同时,X射线吸收光谱表明,表面缺陷工程将CoS四面体调整为Co S 上的CoS八面体,在Co S 八面体位点上赋予了丰富的硫空位。在电化学过程中不断增加的硫空位进一步促进了LiPS的化学捕获及其转化动力学,实现了快速且持久的锂硫化学反应。受益于这些特性,所开发的3DOM N-Co S /S正极在提高硫负载量和降低电解液含量的情况下,具有高面积容量、出色的倍率性能和优异的循环稳定性,容量衰减率极低。这种设计策略推动了实用型Li-S电池的发展,并为相关储能应用中的材料工程提供了思路。

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