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超快策略制备高性能锂硫电池硫正极。

Ultrafast Strategy to Fabricate Sulfur Cathodes for High-Performance Lithium-Sulfur Batteries.

机构信息

Shenzhen Key Laboratory of Interfacial Science and Engineering of Materials, Department of Materials Science and Engineering, Southern University of Science and Technology, Shenzhen 518055, China.

Key University Laboratory of Highly Efficient Utilization of Solar Energy and Sustainable Development of Guangdong, Southern University of Science and Technology, Shenzhen 518055, China.

出版信息

ACS Appl Mater Interfaces. 2023 Jul 5;15(26):31478-31490. doi: 10.1021/acsami.3c04972. Epub 2023 Jun 25.

DOI:10.1021/acsami.3c04972
PMID:37357370
Abstract

Based on the different dielectric properties of materials and the selective heating property of microwaves, the ultrafast (30 s) preparation of S-NiS@SP@Bitu as a cathode material for lithium-sulfur batteries was achieved using bitumen, sulfur, Super P, and nickel naphthenate as raw materials for the first time, under microwave treatment. NiS@SP@Bitu forms Li-N, Li-O, Li-S, and Ni-S bonds with polysulfide, which contributes to promoting the adsorption of polysulfide, reducing the precipitation and decomposition energy barrier of LiS, and accelerating the catalytic conversion of polysulfide, as result of inhibiting the "shuttle effect" and improving the electrochemical performance. S-NiS@SP@Bitu as the sulfur cathode material demonstrates outstanding rate performance (518.6 mAh g at 4C), and stable cycling performance. The lithium-sulfur battery with a sulfur loading of 4.8 mg cm shows an areal capacity of 4.6 mAh cm. Based on the advantages of microwave selective and rapid heating, this method creatively realized that the sulfur carrier material was prepared and sulfur was fixed in it at the same time. Therefore, this method would have implications for the preparation of sulfur cathode materials.

摘要

基于材料的不同介电性能和微波的选择加热特性,首次以沥青、硫、Super P 和环烷酸镍为原料,通过微波处理,快速(30 s)制备了 S-NiS@SP@Bitu 作为锂电池的硫正极材料。NiS@SP@Bitu 与多硫化物形成 Li-N、Li-O、Li-S 和 Ni-S 键,有助于促进多硫化物的吸附,降低 LiS 的沉淀和分解能垒,加速多硫化物的催化转化,从而抑制“穿梭效应”,提高电化学性能。S-NiS@SP@Bitu 作为硫正极材料表现出优异的倍率性能(在 4C 时为 518.6 mAh g)和稳定的循环性能。载硫量为 4.8 mg cm 的锂硫电池的面积容量为 4.6 mAh cm。基于微波选择性和快速加热的优势,该方法创造性地实现了同时制备硫载体材料和固定其中的硫。因此,该方法将对硫正极材料的制备具有重要意义。

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