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首页> 外文期刊>Nanoscale >Highly dispersed Fe3O4 eanosheets on one-dimensional carbon naeofibers: Synthesis, formation mechanism, and electrochemical performance as supercapacitor electrode materials
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Highly dispersed Fe3O4 eanosheets on one-dimensional carbon naeofibers: Synthesis, formation mechanism, and electrochemical performance as supercapacitor electrode materials

机译:高度分散的Fe3O4 eanosheets一维碳naeofibers:合成、形成机理和电化学作为超级电容器电极材料性能

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Highly dispersed Fe3O4 nanosheets on one-dimensional (1D) carbon nanofibers (CNFs) were firstly fabricated by combining the versatility of the electrospinning technique and solvent-thermal process. The electrochemical performances of the Fe3O4/CNFs nanocomposites as the electrode materials for supercapacitors were evaluated by cyclic voltammetry (CV) and galvanostatic charge-discharge measurement in 1 M Na2SO3 electrolyte. At different scan rates, the sample showed excellent capacitance behavior. The high capacitive behavior could be ascribed to the high electrical conductivity and the one-dimensional properties of the CNFs in Fe3O4/CNFs nanocomposites, which could decrease the charge transfer resistance of the Fe3O4. At the same time, the high specific surface area and high level exposure of the Fe3O4 nanosheets on the surface of the CNFs increased the electrochemical utilization of Fe3O4. Moreover, in comparison to the pure Fe3O4 (83 F g~(-1)), the as-prepared Fe3O4/ CNFs nanocomposites electrode exhibited a higher specific capacitance (135 F g~(-1)). Meanwhile, the supercapacitor devices of the Fe3O4/CNFs nanocomposites exhibited excellent long cycle life along with 91% specific capacitance retained after 1000 cycle tests. Finally, a possible mechanism for the formation of the Fe3O4 nanosheets on the surface of CNFs was suggested.
机译:高度分散的Fe3O4 nanosheets一维(1 d)纳米碳纤维(cnf)首先组装相结合电纺的技术和多功能性的solvent-thermal过程。表演的Fe3O4 / cnf纳米复合材料超级电容器的电极材料评估通过循环伏安法(CV)和恒电流充放电测试在1 M泥电解液。示例显示良好的电容行为。高的电容行为可以归因于高导电性和一维属性的cnfFe3O4 / cnf纳米复合材料,这可能会减少Fe3O4的电荷转移电阻。同时,高的比表面积和高度曝光的Fe3O4 nanosheetscnf的表面增加了电化学Fe3O4的利用率。相比于纯Fe3O4 (83 F (g ~ (1)),做好准备的Fe3O4 / cnf纳米复合材料电极表现出较高的比电容(135 F (g ~(1))。设备的Fe3O4 / cnf纳米复合材料表现出良好的循环寿命长91%比电容留存1000年之后循环测试。的形成Fe3O4 nanosheets上表面cnf的建议。

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