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A strategy to boost electrochemical properties of the graphene oxide-poly(3,4-ethylenedioxythiophene) composites for supercapacitor electrodes

机译:一种促进石墨烯 - 聚(3,4-乙腈)复合材料的电化学性能对超级电容器电极的策略

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摘要

We report on a strategy to enhance electrochemical capacitive properties of the graphene oxide-poly(3,4-ethylenedioxythiophene) (GO-PEDOT) composites. The basic idea is to convert GO to carboxylated GO (CGO) via carboxylation treatment. Composite electrodes of CGO-doped PEDOT (CGO-PEDOT) are fabricated by in situ electrochemical polymerization, which make adequate use of oxygenated groups on the basal plane of CGO to combine with PEDOT for enhanced supercapacitive properties. During carboxylation, hydroxyl and epoxide groups on GO are converted to carboxyl groups, as characterized by X-ray photoelectron spectroscopy and Fourier transform infrared spectroscopy. Electrochemical measurements show that CGO-PEDOT electrodes have boosted supercapacitive performances as compared to GO-PEDOT. In CGO nanosheets, the edges and basal planes are both covered with carboxyl groups, providing more active sites for combination with PEDOT coating, in contrast to GO nanosheets that only use edged carboxyl groups. The as-prepared CGO-PEDOT composite electrodes exhibit superior rate capability, high areal specific capacitance (90.9 mF cm(-2) at 10 mV s(-1)), and excellent cycling stability (retaining 99.6% of initial capacitance for 5000 cycles). This work is anticipated to stimulate further research interest for CGO-based composite electrodes in electrochemical energy storage.
机译:我们报告了一种增强石墨烯 - 聚(3,4-亚乙基氧基噻吩)(Go-PEDOT)复合材料的电化学电容性质的策略。基本思想是通过羧化处理转换成羧化的去(CGO)。通过原位电化学聚合制备CGO掺杂型佩托(CGO-PEDOT)的复合电极,这使得在CGO的基础面上使用含氧基团与PEDOT组合以增强的超级电容性。在羧化期间,转变羟基和环氧化物基团转化为羧基,其特征在于X射线光电子谱和傅里叶变换红外光谱。电化学测量结果表明,与GO-PEDOT相比,CGO-PEDOT电极具有提高超级性能。在CGO纳米片中,边缘和基底平面均覆盖有羧基,提供更多的活性位点,以与铅扒涂层组合,相反,对于仅使用边缘羧基的纳米片。制备的CGO-PEDOT复合电极具有优异的速率能力,高度特异性电容(90.9mF cm(-2),在10 mV s(-1)),以及优异的循环稳定性(保持99.6%的初始电容为5000个循环)。预计这项工作将刺激电化学能量储存中基于CGO的复合电极的进一步研究兴趣。

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  • 来源
    《Journal of Materials Science》 |2018年第7期|共13页
  • 作者单位

    Shanxi Univ Inst Mol Sci Key Lab Chem Biol &

    Mol Engn Educ Minist Key Lab Mat Energy Convers &

    Storage Shanxi Prov Taiyuan 030006 Shanxi Peoples R China;

    Shanxi Univ Inst Mol Sci Key Lab Chem Biol &

    Mol Engn Educ Minist Key Lab Mat Energy Convers &

    Storage Shanxi Prov Taiyuan 030006 Shanxi Peoples R China;

    Shanxi Univ Inst Mol Sci Key Lab Chem Biol &

    Mol Engn Educ Minist Key Lab Mat Energy Convers &

    Storage Shanxi Prov Taiyuan 030006 Shanxi Peoples R China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 工程材料学;
  • 关键词

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