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首页> 外文期刊>Journal of Alloys and Compounds: An Interdisciplinary Journal of Materials Science and Solid-state Chemistry and Physics >A novel way to synthesize nitrogen doped porous carbon materials with high rate performance and energy density for supercapacitors
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A novel way to synthesize nitrogen doped porous carbon materials with high rate performance and energy density for supercapacitors

机译:一种新的方法,将氮掺杂多孔碳材料合成,具有高速速率和超级电容器的能量密度

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摘要

We report a novel, facile method for the synthesis of nitrogen doped porous carbon with three-dimensional interconnected porous framework by one-step pyrolysis of the mixture of agar, potassium citrate and urea. The optimized material possesses large specific surface area, interconnected porous framework and massive heteroatom functional groups. As an electrode material, it delivers a high specific capacity of 357 F g(-1) at 1 A g(-1), good rate performance (267 F g(-1) at 50 A g(-1)) and good electrochemical stabilization (95.6% initial capacitance retained after 10,000 cycles) in 6 M KOH solution. Moreover, the as-prepared symmetric supercapacitor based on the NPC electrodes shows an energy density of 24.1 Wh Kg(-1) between the voltage ranges of 0-1.8 V in 1 M Na2SO4 solution, comparable with most of reported carbon-based symmetric supercapacitors. More immortally, even at a high power density of 12.5 kW kg(-1), it still remains an energy density of 12.5 Wh kg(-1). Therefore, this paper provides a facile, sustainable method for the synthesis of heteroatom doped three-dimensional interconnected porous carbon materials for high performance supercapacitors. (C) 2019 Elsevier B.V. All rights reserved.
机译:我们通过一步热解的琼脂,柠檬酸钾和尿素混合物的一步热解来报告一种新的,共同掺杂多孔碳的氮掺杂多孔碳。优化的材料具有大的比表面积,相互连接的多孔框架和大规模杂原子官能团。作为电极材料,它以1A的1A(-1),良好的速率性能(267 f g(-1)为50 a g(-1))和良好的速度,它递送357 f g(-1)的高比容量。在6M KOH溶液中,电化学稳定(在10,000次循环后保留的95.6%初始电容)。此外,基于NPC电极的AS制备的对称超级电容器显示在1M Na 2 SO 4溶液中的电压范围为0-1.8V的电压范围之间的能量密度为0-1.8V的电压范围,与大多数报告的基于碳的对称超级电容器相当。更不朽,即使在高功率密度为12.5 kg kg(-1),它仍然仍然是12.5WH kg(-1)的能量密度。因此,本文提供了一种适用于合成高性能超级电容器的掺杂掺杂的三维互连多孔碳材料的容易性的可持续性方法。 (c)2019 Elsevier B.v.保留所有权利。

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