Spherical Silicon/CNT/Carbon Composite Wrapped with Graphene as an Anode Material for Lithium-Ion Batteries

IF 2.2 4区 工程技术 Q3 ELECTROCHEMISTRY Journal of electrochemical science and technology Pub Date : 2021-12-17 DOI:10.33961/jecst.2021.01004
Min-Seon Shin, C. Choi, Min‐Sik Park, Sung-man Lee
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Abstract

The assembly of the micron-sized Si/CNT/carbon composite wrapped with graphene (SCG composite) is designed and synthesized via a spray drying process. The spherical SCG composite exhibits a high discharge capacity of 1789 mAh g -1 with an initial coulombic efficiency of 84 %. Moreover, the porous architecture of SCG composite is beneficial for enhancing cycling stability and rate capability. In practice, a blended electrode consisting of spherical SCG composite and natural graphite with a reversible capacity of ~500 mAh g -1 , shows a stable cycle performance with high cycling efficiencies (> 99.5%) during 100 cycles. These superior electrochemical performance are mainly attributed to the robust design and structural stability of the SCG composite during charge and discharge process. It appears that despite the fracture of micro-sized Si particles during repeated cycling, the electrical contact of Si particles can be maintained within the SCG composite by suppressing the direct contact of Si particles with electrolytes.
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石墨烯包裹球形硅/碳纳米管/碳复合材料作为锂离子电池负极材料
通过喷雾干燥工艺设计并合成了微米级石墨烯包裹的Si/CNT/碳复合材料(SCG复合材料)组件。球形SCG复合材料具有1789mAh g-1的高放电容量,初始库仑效率为84%。此外,SCG复合材料的多孔结构有利于提高循环稳定性和倍率性能。在实践中,由球形SCG复合材料和可逆容量约为500mAh g-1的天然石墨组成的混合电极在100次循环中表现出稳定的循环性能和高循环效率(>99.5%)。这些优异的电化学性能主要归功于SCG复合材料在充电和放电过程中的稳健设计和结构稳定性。看来,尽管在重复循环过程中微观尺寸的Si颗粒断裂,但通过抑制Si颗粒与电解质的直接接触,可以在SCG复合材料内保持Si颗粒的电接触。
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来源期刊
CiteScore
6.30
自引率
8.10%
发文量
44
期刊介绍: Covering fields: - Batteries and Energy Storage - Biological Electrochemistry - Corrosion Science and Technology - Electroanalytical Chemistry and Sensor Technology - Electrocatalysis - Electrochemical Capacitors & Supercapcitors - Electrochemical Engineering - Electrodeposition and Surface Treatment - Environmental Science and Technology - Fuel Cells - Material Electrochemistry - Molecular Electrochemistry and Organic Electrochemistry - Physical Electrochemistry - Solar Energy Conversion and Photoelectrochemistry
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