Silicon has been regarded as one of the most promising anode materials for Li-ion batteries. Its theoretical capacity (4 000 mAh/g) is much higher than that of the commercialized graphite (372 mAh/g)[1]. However,the cycle performance of silicon is poor due to the severe volume expansion and shrinkage during Li+ insertion/extraction which results in pulverization of Si particles, eventually losing its Li+ storage ability[2]. To solve this problem, nanosized Si particles were utilized and achieved a partial improvement by reducing the absolute volume change. Nevertheless, a new problem was encountered with nanosized material that small Si particles were aggregated to be larger one during Li+ insertion/extraction, and then pulverized again[3]. In this work, we have succeeded to improve the cycle performance of nanosized Si particles by synthesis of carbon coated silicon nanoparticle.">

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Preparation and Characterization of Carbon Coated Silicon Nanoparticle as Anode Material for Li-ion Preparation and Characterization of Carbon Coated Silicon Nanoparticle as Anode Material for Li-ion

Preparation and Characterization of Carbon Coated Silicon Nanoparticle as Anode Material for Li-ion

  • 期刊名字:復(fù)旦學(xué)報(bào)(自然科學(xué)版)
  • 文件大?。?/li>
  • 論文作者:T. Zhancg,L.J. Fu,J. Gao,Y. P.
  • 作者單位:Department of Chemistry & Shanghai Key Laboratory of Molecular Catalysis and Innovative Materials
  • 更新時(shí)間:2023-02-12
  • 下載次數(shù):
論文簡(jiǎn)介

1Introduction Silicon has been regarded as one of the most promising anode materials for Li-ion batteries. Its theoretical capacity (4 000 mAh/g) is much higher than that of the commercialized graphite (372 mAh/g)[1]. However,the cycle performance of silicon is poor due to the severe volume expansion and shrinkage during Li+ insertion/extraction which results in pulverization of Si particles, eventually losing its Li+ storage ability[2]. To solve this problem, nanosized Si particles were utilized and achieved a partial improvement by reducing the absolute volume change. Nevertheless, a new problem was encountered with nanosized material that small Si particles were aggregated to be larger one during Li+ insertion/extraction, and then pulverized again[3]. In this work, we have succeeded to improve the cycle performance of nanosized Si particles by synthesis of carbon coated silicon nanoparticle.

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