Journal of Inorganic Materials

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Scalable Synthesis of Si/SiOx@C Nanocomposite from Naturally Silicon-rich Crop as Anode for Lithium-ion Batteries

WU Jie1, LI Yan1, GU Yuchen1, ZHANG Hao1, SONG Yingying2, YASSER A Attia3, MA Ruguang1   

  1. 1. School of Materials Science and Engineering, Suzhou University of Science and Technology, Suzhou 215009, China;
    2. College of Chemistry and Chemical Engineering, Hainan Normal University, Haikou 571158, China;
    3. National Institute of Laser Enhanced Sciences, Cairo University, Giza 12613, Egypt
  • Received:2026-04-25 Revised:2026-07-09
  • Contact: MA Ruguang, Professor. E-mail: ruguangma@usts.edu.cn; YASSER A Attia, Professor. E-mail: yasserniles@niles.edu.eg
  • About author:WU Jie (2000-), female, Master candidate. E-mail: Jyeee_w@163.com
  • Supported by:
    National Natural Science Foundation of China (52172058, 22579119); The Natural Science Foundation of the Jiangsu Higher Education Institutions of China (25KJA430011); Natural Science Foundation of Jiangsu Province (BK20241946)

Abstract: Biomass-derived silicon resources offer a sustainable pathway for high-performance lithium-ion battery (LIB) anodes but are often limited by complex synthesis routes and unstable structures. Herein, we report a scalable strategy that couples molten-salt-assisted aluminothermic reduction with ball milling to convert rice husks into a Si/SiOx@C nanocomposite. The process enables the formation of uniformly dispersed ~50 nm Si/SiOx domains embedded within a conductive carbon matrix (BH-12), which effectively mitigates the large volume variation of Si and accelerates electron/ion transport. Benefiting from the synergistic structure, BH-12 achieves a high reversible capacity of 437.1 mAh·g-1 at 0.1 A·g-1 and retains 369.8 mAh·g-1 after 160 cycles, markedly outperforming pristine carbonized husks and unreduced samples. Furthermore, coupling with LiFePO4 (LFP), the BH-12||LFP full cell exhibits superior rate capability and enhanced Li+ diffusion kinetics (10-10.5-10-9 cm2·s-1), attributed to reduced particle size and strengthened interfacial stability. This work demonstrates an environmentally friendly and cost-effective approach for mass production of high-performance Si-based anodes, providing practical insights for next-generation LIBs.

Key words: rice husk-derived silicon, lithium-ion batteries, ball milling engineering, aluminothermic reduction, Si/SiOx@C nanocomposite

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