Preparation of Si-SiO x nanoparticles from volatile residue produced by refining of silicon

Residual Si was produced on a furnace wall when upgraded metallurgical grade Si was refined by electron beam melting. It was then recycled to prepare Si-SiO nanoparticles with an average size of 100 nm by planetary ball milling. The obtained Si-SiO nanoparticles mainly consist of amorphous Si, cryst...

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Veröffentlicht in:Waste management (Elmsford) 2019-02, Vol.84, p.373
Hauptverfasser: Gan, Chuanhai, Wen, Shutao, Liu, Yingkuan, Wen, Weidong, Dou, Peng, Su, Jing, Luo, Xuetao
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Sprache:eng
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Zusammenfassung:Residual Si was produced on a furnace wall when upgraded metallurgical grade Si was refined by electron beam melting. It was then recycled to prepare Si-SiO nanoparticles with an average size of 100 nm by planetary ball milling. The obtained Si-SiO nanoparticles mainly consist of amorphous Si, crystalline Si and amorphous SiO , which was confirmed by XRD, FTIR, XPS and TEM. SiO is mainly composed of SiO and SiO . Distilled water used as a grinding aid not only enhances milling efficiency, but also plays a key role in obtaining SiO . During refining of upgraded metallurgical grade Si, the deposition pattern of residual Si on furnace wall agrees with model of three-dimension growth. Growth of Si-SiO nanoparticles is the mutual effect of distilled water and ball milling. Si-SiO nanoparticles were doped into phenolic resin pyrolysis carbon as anode materials for lithium ion batteries, and 10% doping was observed to improve the specific capacity. After 500 cycles, specific capacity of delithiation remained around 550 mA h/g. It suggests the residual Si is a value-added by-product, and it can be recycled as anode materials for lithium ion batteries.
ISSN:1879-2456
DOI:10.1016/j.wasman.2018.11.032