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用于锂离子电池的高性能阳极C@Sn/NSGr复合材料的合理构建

Rational Construction of C@Sn/NSGr Composites as Enhanced Performance Anodes for Lithium Ion Batteries.

作者信息

Yang Guanhua, Li Yihong, Wang Xu, Zhang Zhiguo, Huang Jiayu, Zhang Jie, Liang Xinghua, Su Jian, Ouyang Linhui, Huang Jianling

机构信息

Guangxi Key Laboratory of Automobile Components and Vehicle Technology, Guangxi University of Science and Technology, Liuzhou 545006, China.

Guangxi Key Laboratory of Low Carbon Energy Materials, Guangxi New Energy Ship Battery Engineering Technology Research Center, Guangxi Scientific and Technological Achievements Transformation Pilot Research Base of Electrochemical Energy Materials and Devices, School of Chemistry and Pharmaceutical Sciences, Guangxi Normal University, Guilin 541004, China.

出版信息

Nanomaterials (Basel). 2023 Jan 9;13(2):271. doi: 10.3390/nano13020271.

Abstract

As a potential anode material for lithium-ion batteries (LIBs), metal tin shows a high specific capacity. However, its inherent "volume effect" may easily turn tin-based electrode materials into powder and make them fall off in the cycle process, eventually leading to the reduction of the specific capacity, rate and cycle performance of the batteries. Considering the "volume effect" of tin, this study proposes to construct a carbon coating and three-dimensional graphene network to obtain a "double confinement" of metal tin, so as to improve the cycle and rate performance of the composite. This excellent construction can stabilize the tin and prevent its agglomeration during heat treatment and its pulverization during cycling, improving the electrochemical properties of tin-based composites. When the optimized composite material of C@Sn/NSGr-7.5 was used as an anode material in LIB, it maintained a specific capacity of about 667 mAh g after 150 cycles at the current density of 0.1 A g and exhibited a good cycle performance. It also displayed a good rate performance with a capability of 663 mAh g, 516 mAh g, 389 mAh g, 290 mAh g, 209 mAh g and 141 mAh g at 0.1 A g, 0.2 A g, 0.5 A g, 1 A g, 2 A g and 5 A g, respectively. Furthermore, it delivered certain capacitance characteristics, which could improve the specific capacity of the battery. The above results showed that this is an effective method to obtain high-performance tin-based anode materials, which is of great significance for the development of new anode materials for LIBs.

摘要

作为锂离子电池(LIBs)的一种潜在负极材料,金属锡具有较高的比容量。然而,其固有的“体积效应”可能会轻易地将锡基电极材料变成粉末,并使其在循环过程中脱落,最终导致电池的比容量、倍率性能和循环性能下降。考虑到锡的“体积效应”,本研究提出构建碳涂层和三维石墨烯网络以实现对金属锡的“双重限制”,从而提高复合材料的循环和倍率性能。这种优异的结构可以在热处理过程中稳定锡并防止其团聚,在循环过程中防止其粉化,从而改善锡基复合材料的电化学性能。当优化后的C@Sn/NSGr-7.5复合材料用作LIB的负极材料时,在0.1 A g的电流密度下循环150次后,其比容量保持在约667 mAh g,表现出良好的循环性能。在0.1 A g、0.2 A g、0.5 A g、1 A g、2 A g和5 A g的电流密度下,它还分别表现出663 mAh g、516 mAh g、389 mAh g、290 mAh g、209 mAh g和141 mAh g的良好倍率性能。此外,它还具有一定的电容特性,可提高电池的比容量

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7a4c/9861279/c497dd72a022/nanomaterials-13-00271-sch001.jpg

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