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分层自组装的 BiS 空心纳米管,表面涂有硫掺杂非晶碳,可用作锂离子电池的先进阳极材料。

Hierarchical self-assembled BiS hollow nanotubes coated with sulfur-doped amorphous carbon as advanced anode materials for lithium ion batteries.

机构信息

National Center for International Research on Green Optoelectronics, South China Normal University, Guangzhou 510006, China.

出版信息

Nanoscale. 2018 Jul 19;10(28):13343-13350. doi: 10.1039/c8nr04685a.

DOI:10.1039/c8nr04685a
PMID:29993079
Abstract

Bismuth sulfide (Bi2S3) is considered as a promising anode material for lithium ion batteries (LIBs) owing to its high theoretical specific capacity and intriguing reaction mechanism. However, capacity fading and cycling instability due to volume variation during the lithiation/delithiation process still remain a great challenge. Herein, we proposed a simple glucose assisted hydrothermal strategy and followed a post-treatment process to prepare hierarchical sulfur-doped carbon Bi2S3 (Bi2S3@SC) hollow nanotubes that self-assembled into sulfur-doped amorphous carbon coated Bi2S3 nanocrystals as building blocks. Glucose plays a decisive role in the formation process of Bi2S3 nanocrystals and subsequent self-assembly, forming Bi2S3@SC hollow nanotubes. The polysaccharide shell formed on the surface of Bi2S3 nanocrystals during the hydrothermal process was transformed into the sulphur-doped amorphous carbon layer after the post-treatment process. Electrochemical tests reveal that the resulting composites exhibit excellent electrochemical performance with a highly reversible cycling capacity of ∼950 mA h g-1 at a current density of 100 mA g-1, as well as a good rate capability and significantly enhanced cycling stability derived from their unique structural features, thus demonstrating the potential of Bi2S3@SC hollow nanotubes as high performance anode materials for LIBs. The analysis of electrochemical kinetics confirmed that the pseudocapacitive behavior dominates the overall storage process of Bi2S3@SC hollow nanotubes.

摘要

硫化铋(Bi2S3)因其高理论比容量和有趣的反应机制而被认为是一种很有前途的锂离子电池(LIBs)的阳极材料。然而,由于在锂化/脱锂过程中的体积变化,容量衰减和循环不稳定性仍然是一个巨大的挑战。在此,我们提出了一种简单的葡萄糖辅助水热策略,并进行了后处理,制备了由自组装的硫掺杂无定形碳包覆 Bi2S3 纳米晶作为构建块的分级硫掺杂碳包覆 Bi2S3(Bi2S3@SC)空心纳米管。葡萄糖在 Bi2S3 纳米晶的形成过程和随后的自组装中起着决定性的作用,形成 Bi2S3@SC 空心纳米管。在水热过程中,Bi2S3 纳米晶表面形成的多糖壳在后续的后处理过程中转化为硫掺杂无定形碳层。电化学测试表明,所得复合材料表现出优异的电化学性能,在 100 mA g-1 的电流密度下具有高达 950 mA h g-1 的可逆循环容量,以及良好的倍率性能和显著增强的循环稳定性,这得益于其独特的结构特征,因此证明了 Bi2S3@SC 空心纳米管作为高性能 LIBs 阳极材料的潜力。电化学动力学分析证实,赝电容行为主导了 Bi2S3@SC 空心纳米管的整体存储过程。

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