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Plasma-induced nitrogen-doped graphene-based aerogels for high-performance supercapacitors

机译:等离子体诱导的氮掺杂石墨烯气凝胶用于高性能超级电容器

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摘要

Commonly used energy storage devices include stacked layers of active materials on two-dimensional sheets, and the limited specific surface area restricts the further development of energy storage. Three-dimensional (3D) structures with high specific surface areas would improve device performance. Herein, we present a novel procedure to fabricate macroscopic, high-quality, nitrogen-doped, 3D grapheneanoparticle aerogels. The procedure includes vacuum filtration, freeze-drying, and plasma treatment, which can be further expanded for large-scale production of nitrogen-doped, graphene-based aerogels. The behavior of the supercapacitor is investigated using a typical nitrogen-doped graphene/Fe3O4 nanoparticle 3D structure (NG/Fe3O4). Compared with 3D graphene/Fe3O4 structures prepared by the traditional hydrothermal method, the NG/Fe3O4 supercapacitor prepared by the present method has a 153% improvement in specific capacitance, and there is no obvious decrease in specific capacitance after 1000 cycles. The present work provides a new and facile method to produce large-scale, 3D, graphene-based materials with high specific capacitance for energy storage.
机译:常用的能量存储装置包括在二维片上的活性材料的堆叠层,并且有限的比表面积限制了能量存储的进一步发展。具有高比表面积的三维(3D)结构将改善设备性能。在这里,我们提出了一种新颖的程序来制造宏观,高质量,氮掺杂的3D石墨烯/纳米颗粒气凝胶。该程序包括真空过滤,冷冻干燥和等离子体处理,可以进一步扩展以大规模生产氮掺杂的基于石墨烯的气凝胶。使用典型的氮掺杂石墨烯/ Fe3O4纳米颗粒3D结构(NG / Fe3O4)研究了超级电容器的行为。与传统水热法制备的3D石墨烯/ Fe3O4结构相比,本发明方法制备的NG / Fe3O4超级电容器的比电容提高了153%,经过1000次循环后比电容没有明显下降。本工作提供了一种新的简便方法来生产具有高比电容的大型3D石墨烯基材料用于储能。

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