阳极
锂(药物)
材料科学
离子
电化学
碳纳米纤维
碳纤维
同轴
纳米颗粒
电极
纳米纤维
纳米技术
储能
电化学动力学
化学工程
复合材料
化学
碳纳米管
复合数
物理化学
工程类
有机化学
内分泌学
医学
物理
量子力学
功率(物理)
电气工程
作者
Jinbing Cheng,Xiaohong Lu,Deyang Zhang,Hailong Yan,Congbin Liu,Junbao He,Changbo Zheng,Hao Shi,Paul K. Chu,Yongsong Luo
标识
DOI:10.1021/acsanm.4c00999
摘要
In advancing lithium-ion batteries to achieve high energy densities, prolonged cycling lifespan, and enhanced charging rates, electrode materials with high specific capacities play a crucial role. In this study, we have developed a porous carbon substrate using coaxial electrostatic spinning to enhance the electrochemical properties of the carbon-based anode. This porous structure exposes numerous active sites for Li + ions and reduces the Li + /e – transport pathway, thereby improving the kinetics of Li + /ion and electron transfer. The symbiotic interaction between N and Fe 3 C nanoparticles facilitates the formation of hollow channels and dual conductive pathways. These Fe 3 C nanoparticles, along with hollow carbon nanofibers, enhance long-term cycling stability at room temperature, promote the formation of stable SEI layers, and improve interfacial compatibility. The Fe 3 C hollow multichannel carbon fibers (Fe 3 C/HMCFs) were subjected to analysis using a magnetic measurement system to investigate the charge transfer phenomenon. The observed charge transfer behavior confirms the conductivity of the magnetic Fe 3 C materials. These Fe 3 C/HMCFs exhibit favorable electrochemical characteristics, including an initial capacity of 1130 mAh g –1 at a current density of 2 A g –1 and a second charge/discharge capacity of 706 mAh g –1 .
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