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Hydrothermal Synthesis of Graphene Quantum Dots Supported on Three-Dimensional Graphene for Supercapacitors

机译:三维石墨烯支撑的超级电容器石墨烯量子点的水热合成

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摘要

Incorporation of new functional components into a three-dimensional graphene (3DG) framework improves the performance of supercapacitors based on 3DG as electrodes by tailoring the framework’s structure and properties. In this work, graphene quantum dots (GQDs) were incorporated into 3DG via one-step hydrothermal treatment of GQDs and graphene oxide (GO). By simply adjusting the GQDs/GO feeding ratio by weight, various GQDs/3DG composites were formed. The maximum feeding ratio was 80%, and the prepared composites possessed saturated GQDs loading on the 3DG framework, whereas composites obtained with a GQDs/GO feeding ratio of 40% as electrodes exhibited optimal specific capacitance of 242 F·g−1 for supercapacitors, an increase of 22% compared with that of pure 3DG electrodes (198 F·g−1). This improved performance was mainly due to better electrical conductivity and larger surface area for GQDs/3DG composites with moderate GQDs content. The fabricated GQDs/3DG composites as electrodes for supercapacitors revealed high electrochemical stability. Their capacitance kept 93% of the initial value after 10,000 charge-discharge cycles.
机译:将新的功能组件整合到三维石墨烯(3DG)框架中,可以通过调整框架的结构和属性来改善基于3DG作为电极的超级电容器的性能。在这项工作中,石墨烯量子点(GQDs)通过GQDs和氧化石墨烯(GO)的一步水热处理而被引入3DG。通过简单地按重量调整GQDs / GO进料比,就可以形成各种GQDs / 3DG复合材料。最大进料比为80%,制备的复合材料在3DG骨架上负载了饱和的GQD,而以电极的GQDs / GO进料率为40%时得到的复合材料的最佳比电容为242 F·gsup-1 与超级3DG电极(198 F·g -1 )相比,增加了22%。性能的改善主要是由于具有中等GQDs含量的GQDs / 3DG复合材料具有更好的电导率和更大的表面积。制成的GQDs / 3DG复合材料作为超级电容器的电极具有很高的电化学稳定性。 10,000次充放电循环后,其电容保持初始值的93%。

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