4.8 Article

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

Journal

JOURNAL OF PHYSICAL CHEMISTRY LETTERS
Volume 13, Issue 28, Pages 6587-6596

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acs.jpclett.2c01032

Keywords

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Funding

  1. National Key RAMP
  2. D Program of China [2017YFE0198100]
  3. National Natural Science Foundation of China [52072145, 51802111]
  4. Jilin Talent Development Funding [2021Y027]
  5. Funds for Special Projects of the Central Government in Guidance of Local Science and Technology Development [202002017JC]
  6. Funding of Jilin Province Development and Reform Commission [2020C026-2]
  7. Research Program on Science and Technology from the Education Department of Jilin Province [JJKH20220439KJ, JJKH20210450KJ]

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Highly dispersed antimony-bismuth alloy nanoparticles confined in carbon fibers were fabricated through electrospinning technology and heat treatment in this study. These nanoparticles were uniformly confined into the carbon fibers, facilitating rapid electron transport and inhibiting volume change during cycling. The effect of different electrolyte concentrations on the material's performance was also investigated.
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???1, promising rate capability, and cycling stability upon 500 cycles. Superscript/Subscript Available

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