0 Datasets
0 Files
Get instant academic access to this publication’s datasets.
Yes. After verification, you can browse and download datasets at no cost. Some premium assets may require author approval.
Files are stored on encrypted storage. Access is restricted to verified users and all downloads are logged.
Yes, message the author after sign-up to request supplementary files or replication code.
Join 50,000+ researchers worldwide. Get instant access to peer-reviewed datasets, advanced analytics, and global collaboration tools.
✓ Immediate verification • ✓ Free institutional access • ✓ Global collaborationJoin our academic network to download verified datasets and collaborate with researchers worldwide.
Get Free AccessIn 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.
Jinbing Cheng, Xiaohong Lu, Deyang Zhang, Hailong Yan, Congbin Liu, Junbao He, Changbo Zheng, Hao Shi, Paul Kim Ho Chu, Yongsong Luo (2024). N-Doped Hollow Multichannel Carbon Nanofibers Encased in Fe<sub>3</sub>C for Lithium-Ion Storage. , 7(9), DOI: https://doi.org/10.1021/acsanm.4c00999.
Datasets shared by verified academics with rich metadata and previews.
Authors choose access levels; downloads are logged for transparency.
Students and faculty get instant access after verification.
Type
Article
Year
2024
Authors
10
Datasets
0
Total Files
0
Language
en
DOI
https://doi.org/10.1021/acsanm.4c00999
Access datasets from 50,000+ researchers worldwide with institutional verification.
Get Free Access