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首页> 外文期刊>Nanotechnology >Ultrahigh-power supercapacitors based on highly conductive graphene nanosheet/nanometer-sized carbide-derived carbon frameworks
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Ultrahigh-power supercapacitors based on highly conductive graphene nanosheet/nanometer-sized carbide-derived carbon frameworks

机译:基于高导电石墨烯纳米片/纳米尺寸碳化物衍生的碳框架的超高功率超级电容器

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In order to develop energy storage devices with high power performance, electrodes should hold well-defined pathways for efficient ionic and electronic transport. Herein, we demonstrate a highly conductive graphene nanosheet/nanometer-sized carbide-derived carbon framework (hcGNS/nCDC). In this architecture, nCDC possesses short transport paths for electrolyte ions, thus ensuring the rapid ions transportation. The excellent electrical conductivity of hcGNS can reduce the electrode internal resistance for the supercapacitor and thus endows the hcGNS/nCDC composite electrodes with excellent electronic transportation performance. Electrochemical measurements show that the cyclic voltammogram of hcGNS/nCDC can maintain a rectangular-like shape with the increase of the scan rate from 5 mV s(-1) to 20V s(-1), and the specific capacitance retention is up to 51% even at a high scan rate of 20 V s(-1), suggesting ultrahigh power performance, which, to the best of our knowledge, is among the best power performances reported so far for the carbon materials. Furthermore, the hcGNS/nCDC composite also shows an excellent cycling stability (no drop in its capacitance occurs even after 10000 cycles). This work demonstrates the advantage in the ultrahigh power performance for the framework having both short transport pathways for electrolyte ions and high electrical conductivity.
机译:为了开发具有高功率性能的能量存储装置,电极应保持明确定义的途径,以获得有效的离子和电子传输。在此,我们证明了一种高导电石墨烯纳米片/纳米尺寸的碳化物衍生的碳框架(HCGNS / NCDC)。在这种架构中,NCDC具有用于电解质离子的短传输路径,从而确保快速的离子运输。 HCGNS的优异导电性可以降低超级电容器的电极内阻,从而赋予HCGNS / NCDC复合电极具有优异的电子运输性能。电化学测量表明,HCGNS / NCDC的循环伏安图可以将矩形状形状与从5 mV S(-1)到20V S(-1)的扫描速率的增加,并且特定的电容保持率高达51 %甚至以20 V S(-1)的高扫描速率,旨在提出超高的功率性能,这是我们所知的最佳功率性能之一,这是碳材料的最佳功率表演之一。此外,HCGNS / NCDC复合材料还显示出优异的循环稳定性(即使在10000次循环之后也不会发生电容。这项工作展示了用于电解质离子的短传输途径和高电导率的框架中的超高功率性能的优点。

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