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N-Doped Hollow Multichannel Carbon Nanofibers Encased in Fe3C for Lithium-Ion Storage
被引:3
|作者:
Cheng, Jinbing
[1
]
Lu, Xiaohong
[1
]
Zhang, Deyang
[2
]
Yan, Hailong
[1
]
Liu, Congbin
[1
]
He, Junbao
[1
]
Zheng, Changbo
[1
]
Shi, Hao
[3
]
Chu, Paul K.
[4
,5
]
Luo, Yongsong
[1
,2
]
机构:
[1] Nanyang Normal Univ, Coll Phys & Elect Engn, Henan Int Joint Lab MXene Mat Microstruct, Nanyang 473061, Peoples R China
[2] Xinyang Normal Univ, Henan Joint Int Res Lab New Energy Storage Technol, Engn Res Ctr MXene Energy Storage Mat, Key Lab Microelect & Energy Henan Prov, Nanyang 473061, Peoples R China
[3] Univ Delaware, Dept Phys & Astron, Newark, DE 19716 USA
[4] City Univ Hong Kong, Dept Phys, Dept Mat Sci & Engn, Kowloon, Hong Kong 473061, Peoples R China
[5] City Univ Hong Kong, Dept Biomed Engn, Kowloon, Hong Kong 473061, Peoples R China
基金:
中国国家自然科学基金;
关键词:
Fe3C;
Electrospinning;
Lithium-ionbattery;
Self-supporting;
Carbon nanofiber;
ANODE MATERIALS;
HIGH-CAPACITY;
PERFORMANCE;
NITROGEN;
NANOPARTICLES;
TRANSITION;
NANOTUBES;
COMPOSITE;
D O I:
10.1021/acsanm.4c00999
中图分类号:
TB3 [工程材料学];
学科分类号:
0805 ;
080502 ;
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 Fe3C nanoparticles facilitates the formation of hollow channels and dual conductive pathways. These Fe3C 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 Fe3C hollow multichannel carbon fibers (Fe3C/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 Fe3C materials. These Fe3C/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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页码:10543 / 10551
页数:9
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