Article ID | Journal | Published Year | Pages | File Type |
---|---|---|---|---|
7921251 | Materials Chemistry and Physics | 2018 | 28 Pages |
Abstract
By reason of rich sodium resources, sodium-ion batteries have excited enormous consideration for adhibition in the developing energy-storage stations. And not surprisingly, the exploration of cost-effective anode materials for SIBs have been a conspicuous topic. Herein, iron trioxide embedded in the nitrogen-doped carbon matrix with strong oxygen-bridge bonds is synthesized by using the iron based metal organic framework as template. The obtained composite delivers excellent electrochemical properties, such as specific capacity of 473.7â¯mAh gâ1 at the current density of 100â¯mAâ¯gâ1 after 100 cycles. Besides, the reversible capacity still remains at 155.3â¯mAh gâ1 at the high density of 4000â¯mAâ¯gâ1. This remarkable sodium-ion storage capability could be attributed to the incorporation of nitrogen atoms into carbon matrix and the strong chemical bonds between iron trioxide and carbon matrix, which can restrain electrode pulverization and also retain an interparticle connection even after long cycling that could offer a good electronic conductive pathway. This engineer strategy for preparing iron trioxide possess strong interfacial interaction with nitrogen-doped carbon matrix can be applied to other metal phosphides and metal oxide materials.
Keywords
Related Topics
Physical Sciences and Engineering
Materials Science
Electronic, Optical and Magnetic Materials
Authors
Tianxiao Guo, Hanxiao Liao, Peng Ge, Yu Zhang, Yiqi Tian, Wanwan Hong, Zidan Shi, Chunsheng Shao, Hongshuai Hou, Xiaobo Ji,