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首页> 外文期刊>Carbohydrate Polymers: Scientific and Technological Aspects of Industrially Important Polysaccharides >Tailoring the physicochemical properties of chitosan-derived N-doped carbon by controlling hydrothermal carbonization time for high-performance supercapacitor applicationle
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Tailoring the physicochemical properties of chitosan-derived N-doped carbon by controlling hydrothermal carbonization time for high-performance supercapacitor applicationle

机译:通过控制高性能超级电容器施加的水热碳化时间来剪裁壳聚糖衍生的N-掺杂碳的物理化学性质

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摘要

Although a few methods have been employed to fabricate N-doped porous carbons from various N-containing biomass resources, it is still a big challenge to obtain porous carbons with high supercapacitance performances. Herein, we demonstrate that aN-doped porous carbon with superior supercapacitance can be prepared from chitosan by properly controlling hydrothermal carbonization (HC). The physicochemical and supercapacitance properties of the HC-derived carbon are highly time-dependent and can be readily tailored. As compared with traditional direct pyrolysis, the proper control of HC time plays a very important role in promoting the supercapacitance performances of the N-doped carbon by increasing turbostratic structure, doped N content and active N species, specific surface area, and especially balancing micro-and mesoporosity. These synergistic effects produce a N-doped carbon with an ultrahigh specific capacitance of 406 +/- 36 F g(-1) in a three-electrode system, outstanding rate capability, and ultrahigh energy density (23.6 +/- 3.1Wh kg(-1)).
机译:尽管已经使用少数方法来制造来自各种含N个生物质资源的N掺杂的多孔碳,但是获得具有高超级电容性能的多孔碳仍然是一个很大的挑战。在此,我们证明,通过适当控制水热碳化(HC),可以用壳聚糖制备具有优异超级电容的掺杂型多孔碳。 HC衍生碳的物理化学和超级电容性质是高度时间依赖性的,并且可以容易地定制。与传统的直接热解相比,HC时间的适当控制在通过增加涡轮棘轮结构,掺杂的N含量和活性N种,比表面积,特别是平衡微量的促进N掺杂碳的超电容性能方面起着非常重要的作用。 - 和中间渗透性。这些协同作用在三电极系统,出色的速率和超高能量密度下产生N掺杂的碳,具有406 +/- 36 f G(-1)的超高特定电容(23.6 +/- 3.1wh kg( -1))。

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