材料科学
石墨
阳极
杂质
电极
电化学
锂(药物)
石油焦
碳纤维
化学工程
焦炭
扩散
晶格常数
复合材料
Atom(片上系统)
晶界
压力(语言学)
吸附
晶体结构
粒度
结构材料
格子(音乐)
动力学
间质缺损
体积膨胀
体积热力学
作者
Ziqi Luo,Jianmin Feng,Lei Dong,Yue Wu,Jiahan Ma,Xiaoyu Yu,J.J. Zhang,Conglai Long,Xiaowei Wang,Dejun Li
摘要
This study introduces a plasma-driven strategy to improve the energy-intensive and inefficient characteristics of conventional graphite anode manufacturing for lithium-ion batteries. By utilizing ultrahigh-temperature plasma generated at carbon-fiber electrode tips, needle coke is rapidly graphitized within seconds. The instantaneous heat triggers carbon atom rearrangement and impurity volatilization, yielding a wavy graphite structure with expanded interlayer spacing (ranging from 0.358 to 0.368 nm) and ordered sp2 carbon domains (31.5 nm grain size). This architecture enhances lithium-ion diffusion kinetics while increasing active sites. Electrochemical tests demonstrate exceptional performance: 359.7 mAh/g reversible capacity after 100 cycles and 149.57 mAh/g at 1.6 A/g (7.7% improvement over natural graphite). The wavy structure's lattice distortions act as stress buffers, mitigating volume expansion and improving cycle stability. This research presents an approach for the short-term, low-energy-consumption preparation of high-performance graphite anodes, potentially facilitating the low-cost industrial manufacturing of lithium-ion batteries.
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