4.7 Article

Simple design of a Si-Sn-C ternary composite anode for Li-ion batteries

Journal

JOURNAL OF INDUSTRIAL AND ENGINEERING CHEMISTRY
Volume 98, Issue -, Pages 275-282

Publisher

ELSEVIER SCIENCE INC
DOI: 10.1016/j.jiec.2021.03.043

Keywords

Buffering effect; Carbothermal reduction; Electrospinning; Highly commercial design; Si-Sn-C ternary anode

Funding

  1. National Research Foundation of Korea (NRF) - Korean government (MSIT) [2020R1G1A1101784, 2019R1A2A3000000, NRF2018M3A7B4089670]
  2. National Research Foundation of Korea [2020R1G1A1101784] Funding Source: Korea Institute of Science & Technology Information (KISTI), National Science & Technology Information Service (NTIS)

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This study reported the preparation of simple and highly commercial Si-Sn-C ternary composite electrodes with Si and Sn nanoparticles dispersed in solid CNFs or incorporated into the core of hollow CNFs, showing good rate performance and improved cycling performance. The core/shell structure of the Si-Sn-HC nanofibers was more beneficial for rate performance and cycling performance retention.
Previous research established that Si-Sn-C ternary composite electrodes composed of carbon nanofibers (CNFs) having robust double-hole structures filled with Si and SnOx nanoparticles displayed excellent electrochemical performance due to the thermodynamic contribution of Sn. This study reports simple and highly commercial ternary composite electrodes. By electrospinning and subsequent thermal treatment, Si and Sn nanoparticles were dispersed in solid CNFs to form Si-Sn-SC nanofibers, or they were incorporated into a core of hollow CNFs to form Si-Sn-HC nanofibers. The rate performances of these two ternary electrodes displayed quite good retention because of the ternary composition, but their rate performances differed at high current densities (5000 and 10,000 mA g(-1)); the core/shell structure of the Si-Sn-HC nanofibers was more beneficial for rate performance retention than the Si-Sn-SC nanofibers having intimate electrical contact of Sn and Si with the carbon matrix. Improved cycling performances also resulted from the structure of the Si-Sn-HC nanofibers. The core/shell structured Si-Sn-C ternary composite anode thus has an advantageous structure for high-power Li-ion batteries having long-term stability. (c) 2021 The Korean Society of Industrial and Engineering Chemistry. Published by Elsevier B.V. All rights reserved.

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