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基于石墨烯量子点和聚苯胺纳米纤维的新型高性能不对称微超级电容器。

Novel and high-performance asymmetric micro-supercapacitors based on graphene quantum dots and polyaniline nanofibers.

机构信息

Laboratory of clean energy chemistry and materials, Lanzhou Institute of Chemical Physics, Chinese Academy of Sciences, Lanzhou 730000, China.

出版信息

Nanoscale. 2013 Jul 7;5(13):6053-62. doi: 10.1039/c3nr01139a. Epub 2013 May 29.

Abstract

In comparison with graphene sheets, graphene quantum dots (GQDs) exhibit novel chemical/physical properties including nanometer-size, abundant edge defects, good electrical conductivity, high mobility, chemical inertia, stable photoluminescence and better surface grafting, making them promising for fabricating various novel devices. In the present work, an asymmetric micro-supercapacitor, using GQDs as negative active material and polyaniline (PANI) nanofibers as positive active material, is built for the first time by a simple and controllable two-step electro-deposition on interdigital finger gold electrodes. Electrochemical measurements reveal that the as-made GQDs//PANI asymmetric micro-supercapacitor has a more excellent rate capability (up to 1000 V s(-1)) than previously reported electrode materials, as well as faster power response capability (with a very short relaxation time constant of 115.9 μs) and better cycling stability after 1500 cycles in aqueous electrolyte. On this basis, an all-solid-state GQDs//PANI asymmetric micro-supercapacitor is fabricated using H3PO4-polyvinyl alcohol gel as electrolyte, which also exhibits desirable electrochemical capacitive performances. These encouraging results presented here may open up new insight into GQDs with highly promising applications in high-performance energy-storage devices, and further expand the potential applications of GQDs beyond the energy-oriented application of GQDs discussed above.

摘要

与石墨烯片相比,石墨烯量子点(GQDs)具有新颖的化学/物理性质,包括纳米尺寸、丰富的边缘缺陷、良好的导电性、高迁移率、化学惰性、稳定的光致发光和更好的表面接枝,这使得它们有望制造各种新型器件。在本工作中,首次通过在叉指金电极上简单可控的两步电沉积,构建了以 GQDs 为负活性材料和聚苯胺(PANI)纳米纤维为正活性材料的不对称微超级电容器。电化学测量表明,所制备的 GQDs//PANI 不对称微超级电容器具有比以前报道的电极材料更优异的倍率性能(高达 1000 V s(-1)),以及更快的功率响应能力(具有非常短的弛豫时间常数 115.9 μs)和在水基电解质中循环 1500 次后的更好的循环稳定性。在此基础上,采用 H3PO4-聚乙烯醇凝胶作为电解质,制备了全固态 GQDs//PANI 不对称微超级电容器,也表现出理想的电化学电容性能。这里呈现的这些令人鼓舞的结果可能为具有高应用前景的高性能储能器件中的 GQDs 开辟新的见解,并进一步扩展 GQDs 的潜在应用范围,超出上述 GQDs 的能源应用。

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