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用于锂离子电池负极材料的多维纳米结构硅的电化学合成

Electrochemical Synthesis of Multidimensional Nanostructured Silicon as a Negative Electrode Material for Lithium-Ion Battery.

作者信息

Wang Fan, Li Peng, Li Wei, Wang Dihua

机构信息

School of Resource and Environmental Sciences, Hubei International Scientific and Technological Cooperation Base of Sustainable Resource and Energy, Wuhan University, Wuhan 430072, P. R. China.

出版信息

ACS Nano. 2022 May 24;16(5):7689-7700. doi: 10.1021/acsnano.1c11393. Epub 2022 Apr 21.

DOI:10.1021/acsnano.1c11393
PMID:35445596
Abstract

Silicon (Si) is a promising negative electrode material for lithium-ion batteries (LIBs), but the poor cycling stability hinders their practical application. Developing favorable Si nanomaterials is expected to improve their cyclability. Herein, a controllable and facile electrolysis route to prepare Si nanotubes (SNTs), Si nanowires (SNWs), and Si nanoparticles (SNPs) from halloysite clay (Al(OH)SiO·HO) is developed. It is found that HCl-etching temperature and electrolysis potential play key roles in controlling the morphologies of Si. After being HCl-etched at 80 or 90 °C, halloysite clay can be reduced into Si nanotubes at a suitable potential of -1.45 V or Si nanowires at a wide potential from -1.40 to -1.60 V, respectively, while Si nanoparticles can be only obtained at a more negative potential of -1.60 V without HCl-etching. The different morphologies of Si are associated with the change of reduction kinetics after HCl-etching. Besides, when serving as negative electrode materials for LIBs, Si nanotubes exhibit better Li storage performance than Si nanoparticles and Si nanowires, showing a capacity of 3044 mAh g at 0.20 A g and 1033 mAh g after 1000 cycles at 1 A g. This work provides a controllable approach for the synthesis of Si nanomaterials for LIBs.

摘要

硅(Si)是一种很有前景的锂离子电池(LIBs)负极材料,但较差的循环稳定性阻碍了其实际应用。开发性能良好的硅纳米材料有望提高其循环性能。在此,我们开发了一种可控且简便的电解方法,用于从埃洛石粘土(Al(OH)SiO·HO)制备硅纳米管(SNTs)、硅纳米线(SNWs)和硅纳米颗粒(SNPs)。研究发现,盐酸蚀刻温度和电解电位在控制硅的形貌方面起着关键作用。在80或90°C下进行盐酸蚀刻后,埃洛石粘土分别在-1.45 V的合适电位下可还原为硅纳米管,在-1.40至-1.60 V的较宽电位下可还原为硅纳米线,而在未经盐酸蚀刻的情况下,只有在-1.60 V的更负电位下才能获得硅纳米颗粒。硅的不同形貌与盐酸蚀刻后还原动力学的变化有关。此外,当用作锂离子电池的负极材料时,硅纳米管表现出比硅纳米颗粒和硅纳米线更好的锂存储性能,在0.20 A g时容量为3044 mAh g,在1 A g下循环1000次后容量为1033 mAh g。这项工作为合成用于锂离子电池的硅纳米材料提供了一种可控方法。

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