Issue 30, 2023

Bi nanoparticles confined in N,S co-doped carbon nanoribbons with excellent rate performance for sodium-ion batteries

Abstract

Bismuth (Bi) has emerged as a promising candidate for sodium-ion battery anodes because of its unique layered crystal structure, superior volumetric capacity, and high theoretical gravimetric capacity. However, the large volume expansion and severe aggregation of Bi during the alloying/dealloying reactions are extremely detrimental to cycling stability, which seriously hinders its practical application. To overcome these issues, we propose an effective synthesis of composite materials, encapsulating Bi nanoparticles in N,S co-doped carbon nanoribbons and composites with carbon nanotubes (N,S-C@Bi/CNT), using Bi2S3 nanobelts as templates. The uniform distribution of Bi nanoparticles and the structure of carbon nanoribbons can reduce the diffusion path of ions/electrons, efficiently buffer the large volume change and prevent Bi from aggregating during cycles. As expected, the N,S-C@Bi/CNT electrode shows superior sodium storage performance in half cells, including a high specific capacity (345.3 mA h g−1 at 1.0 A g−1), long cycling stability (1000 cycles), and superior rate capability (336.0 mA h g−1 at 10.0 A g−1).

Graphical abstract: Bi nanoparticles confined in N,S co-doped carbon nanoribbons with excellent rate performance for sodium-ion batteries

Supplementary files

Article information

Article type
Paper
Submitted
03 Apr 2023
Accepted
03 Jul 2023
First published
17 Jul 2023

Dalton Trans., 2023,52, 10537-10544

Bi nanoparticles confined in N,S co-doped carbon nanoribbons with excellent rate performance for sodium-ion batteries

G. Huang, Q. Huang, Z. Cui, J. Zhu, M. Gao, W. Wang, F. Weng, Q. Liu and R. Zou, Dalton Trans., 2023, 52, 10537 DOI: 10.1039/D3DT01015E

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