阳极
法拉第效率
锂(药物)
材料科学
复合数
离子
涂层
电化学
球磨机
化学工程
硅
复合材料
纳米技术
化学
电极
冶金
物理化学
工程类
内分泌学
物理
医学
量子力学
作者
Shuai Wang,Zhenfei Cai,Rui Cao,Ziyang Ma,Qinyu Wu,M. Moin,Zishan Ahsan,Yangzhou Ma,Guowen Song,Weidong Yang,Cuié Wen
摘要
To bring about a revolution in energy storage through Li-ion batteries, it is crucial to develop a scalable preparation method for Si-based composite anodes. However, the severe volume expansion and poor ionic transport properties of Si-based composites present significant challenges. Previous research focused on SiO and nano Si/C composites to address these issues. In this study, mechanical milling was used to introduce a SiOx layer onto the surface of Si by mixing Si and SiO2 in a 1 : 1 mass ratio. The resulting Si+SiO2 composites (denoted as SS50) exhibited an initial coulombic efficiency (ICE) of 73.5% and high rate performance. To further stabilize the overall structure, kerosene was introduced as a carbon source precursor to generate a coating layer. The resulting multiphase composite structure (SiOx+SiO2+C), designated as SS50-900C, demonstrated a capacity retention of 79.5% over 280 cycles at its capacity of 487 mA h g-1. These results suggest that a cost-effective mechanical ball milling refinement of Si+SiO2 and a gas-phase encapsulation process can significantly improve the electrochemical performance of Si-based composites.
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