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封装在碳纳米纤维中的高度分散锑铋合金用于超稳定钾离子电池。

Highly Dispersed Antimony-Bismuth Alloy Encapsulated in Carbon Nanofibers for Ultrastable K-Ion Batteries.

作者信息

Li Huiming, Liu Meiqi, Zhao Chunsheng, Le Zaiyuan, Wei Wenxian, Nie Ping, Hou Meiqi, Xu Tianhao, Gao Shuang, Wang Limin, Chang Limin

机构信息

Key Laboratory of Preparation and Applications of Environmental Friendly Material of the Ministry of Education & College of Chemistry, Jilin Normal University, Changchun 130103, China.

Songyuan Vocational Technical College, Songyuan 138001, China.

出版信息

J Phys Chem Lett. 2022 Jul 21;13(28):6587-6596. doi: 10.1021/acs.jpclett.2c01032. Epub 2022 Jul 14.

Abstract

Antimony-based alloys have appealed to an ever-increasing interest for potassium ion storage due to their high theoretical capacity and safe voltage. However, sluggish kinetics and the large radius of K lead to limited rate performance and severe capacity fading. In this Letter, highly dispersed antimony-bismuth alloy nanoparticles confined in carbon fibers are fabricated through an electrospinning technology followed by heat treatment. The BiSb nanoparticles are uniformly confined into the carbon fibers, which facilitate rapid electron transport and inhibit the volume change during cycling owing to the synergistic effect of the BiSb alloy and carbon confinement engineering. Furthermore, the effect of a potassium bis(fluorosulfonyl)imide (KFSI) electrolyte with different concentrations has been investigated. Theoretical calculation demonstrates that the incorporation of Bi metal is favorable for potassium adsorption. The combination of delicate nanofiber morphology and electrolyte chemistry endows the fiber composite with an improved reversible capacity of 274.4 mAh g, promising rate capability, and cycling stability upon 500 cycles.

摘要

基于锑的合金因其高理论容量和安全电压,在钾离子存储方面引起了越来越多的关注。然而,缓慢的动力学和较大的钾离子半径导致倍率性能受限和严重的容量衰减。在本论文中,通过静电纺丝技术随后进行热处理,制备了限制在碳纤维中的高度分散的锑铋合金纳米颗粒。BiSb纳米颗粒均匀地限制在碳纤维中,由于BiSb合金和碳限制工程的协同效应,这有利于快速电子传输并抑制循环过程中的体积变化。此外,还研究了不同浓度的双(氟磺酰)亚胺钾(KFSI)电解质的影响。理论计算表明,铋金属的掺入有利于钾的吸附。精致的纳米纤维形态和电解质化学的结合赋予纤维复合材料274.4 mAh g的改善的可逆容量、良好的倍率性能以及500次循环后的循环稳定性。

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