Lu Longgang, Zhang Bin, Song Juanjuan, Gao Haiwen, Wu Zongdeng, Shen Honglong, Li Yujunwen, Lei Wu, Hao Qingli
Key Laboratory of Soft Chemistry and Functional Materials, Ministry of Education, School of Chemical Engineering, Nanjing University of Science and Technology, 210094, People's Republic of China.
Nanotechnology. 2021 Dec 23;33(11). doi: 10.1088/1361-6528/ac4064.
In this paper, a carbon nanofiber (CNF) hybrid nanomaterial composed of MnO-Sn cubes embedding in nitrogen-doped CNF (MnO-Sn@CNF) is synthesized through electrospinning and post-thermal reduction processes. It exhibits good electrochemical lithium-ion storage performance as the anode, such as high reversible capacity, outstanding cycle performance (754 mAh gat 1 A gafter 1000 cycles), and good rate capability (447 mAh gat 5 A g). The excellent electrochemical properties are derived from a unique nanostructure design. MnO-Sn@CNF has a three-dimensional conductive network with a stable core-shell structure, which improves the electrical conductivity and mechanical stability of the materials. In addition, the mesopores on the surface of carbon fibers can shorten the diffusion distance of lithium ions and promote the combination of active sites of the material with lithium ions. The internal MnO and Sn form a heterostructure, which enhances the stability of the physical structure of the electrode material. This material design method provides a reference strategy for the development of high-performance lithium-ion batteries anode.
本文通过静电纺丝和后热还原工艺合成了一种由嵌入氮掺杂碳纳米纤维(MnO-Sn@CNF)中的MnO-Sn立方体组成的碳纳米纤维(CNF)杂化纳米材料。作为阳极,它表现出良好的电化学锂离子存储性能,如高可逆容量、出色的循环性能(1000次循环后在1 A g下为754 mAh g)和良好的倍率性能(在5 A g下为447 mAh g)。优异的电化学性能源于独特的纳米结构设计。MnO-Sn@CNF具有三维导电网络和稳定的核壳结构,提高了材料的电导率和机械稳定性。此外,碳纤维表面的中孔可以缩短锂离子的扩散距离,促进材料活性位点与锂离子的结合。内部的MnO和Sn形成异质结构,增强了电极材料物理结构的稳定性。这种材料设计方法为高性能锂离子电池阳极的开发提供了参考策略。