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用于锂硫电池的硫浸渍核壳分级多孔碳

Sulfur-impregnated core-shell hierarchical porous carbon for lithium-sulfur batteries.

作者信息

Zhang Fei-Fei, Huang Gang, Wang Xu-Xu, Qin Yu-Ling, Du Xin-Chuan, Yin Dong-Ming, Liang Fei, Wang Li-Min

机构信息

State Key Laboratory of Rare Earth Resource Utilization, Changchun Institute of Applied Chemistry, Chinese Academy of Sciences, Changchun, 130022, Jilin (P. R. China), Fax: (+86) 431-85262836; University of Chinese Academy of Sciences, Beijing, 100049 (P. R. China).

出版信息

Chemistry. 2014 Dec 22;20(52):17523-9. doi: 10.1002/chem.201404439. Epub 2014 Oct 24.

Abstract

Core-shell hierarchical porous carbon spheres (HPCs) were synthesized by a facile hydrothermal method and used as host to incorporate sulfur. The microstructure, morphology, and specific surface areas of the resultant samples have been systematically characterized. The results indicate that most of sulfur is well dispersed over the core area of HPCs after the impregnation of sulfur. Meanwhile, the shell of HPCs with void pores is serving as a retard against the dissolution of lithium polysulfides. This structure can enhance the transport of electron and lithium ions as well as alleviate the stress caused by volume change during the charge-discharge process. The as-prepared HPC-sulfur (HPC-S) composite with 65.3 wt % sulfur delivers a high specific capacity of 1397.9 mA h g(-1) at a current density of 335 mA g(-1) (0.2 C) as a cathode material for lithium-sulfur (Li-S) batteries, and the discharge capacity of the electrode could still reach 753.2 mA h g(-1) at 6700 mA g(-1) (4 C). Moreover, the composite electrode exhibited an excellent cycling capacity of 830.5 mA h g(-1) after 200 cycles.

摘要

通过简便的水热法合成了核壳结构的分级多孔碳球(HPCs),并将其用作主体材料来负载硫。对所得样品的微观结构、形态和比表面积进行了系统表征。结果表明,在负载硫后,大部分硫很好地分散在HPCs的核区域。同时,具有孔隙的HPCs壳层起到了阻止多硫化锂溶解的作用。这种结构可以增强电子和锂离子的传输,并减轻充放电过程中体积变化引起的应力。作为锂硫(Li-S)电池的阴极材料,含65.3 wt %硫的制备好的HPC-硫(HPC-S)复合材料在335 mA g(-1)(0.2 C)的电流密度下具有1397.9 mA h g(-1)的高比容量,并且在6700 mA g(-1)(4 C)时电极的放电容量仍可达到753.2 mA h g(-1)。此外,复合电极在200次循环后表现出830.5 mA h g(-1)的优异循环容量。

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