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首页> 外文期刊>Journal of Electroanalytical Chemistry: An International Journal Devoted to All Aspects of Electrode Kinetics, Interfacial Structure, Properties of Electrolytes, Colloid and Biological Electrochemistry >Studies of deposition of and charge storage in polypyrrole-chloride and polypyrrole-carbon nanotube composites with an electrochemical quartz crystal microbalance
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Studies of deposition of and charge storage in polypyrrole-chloride and polypyrrole-carbon nanotube composites with an electrochemical quartz crystal microbalance

机译:用电化学石英晶体微量天平研究聚吡咯-氯化物和聚吡咯-碳纳米管复合材料的沉积和电荷存储

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摘要

Carbon nanotubes and their composites with conducting polymers are of interest for supercapacitor and other electrode applications. This paper reports the use of the electrochemical quartz crystal microbalance to investigate the deposition and intercalation behaviour of polypyrrole-carbon nanotube and polypyrrole-chloride thin layers. The standard plots of mass versus potential were converted to "massograms" by differentiating the mass with respect to time. As dm/dt is proportional to l, the plot is directly comparable to the voltammogram. Using these data, deposition potentials of 0.7 and 0.8 V were selected for polypyrrole-chloride and polypyrrole-carbon nanotube films, respectively. In polypyrrole-chloride deposits, anion uptake upon oxidation was observed. In the polypyrrole-nanotube layers, a mix of cation expulsion and anion uptake upon oxidation is observed when using 0.1 M KCl (aq) as the electrolyte. However, using 0.1 M tetrabutylammonium bromide, only uptake of bromide is observed, due to the bulkiness of the cation. In addition to this complex charge neutralisation behaviour, a redox pseudocapacitance was confirmed directly using the massogram data. (C) 2004 Elsevier B.V. All rights reserved.
机译:碳纳米管及其与导电聚合物的复合材料是超级电容器和其他电极应用的关注点。本文报道了使用电化学石英晶体微量天平研究聚吡咯-碳纳米管和聚吡咯-氯化物薄层的沉积和嵌入行为。通过将质量相对于时间进行微分,将质量与电势的标准图转换为“质谱图”。由于dm / dt与l成正比,因此该图可直接与伏安图进行比较。使用这些数据,分别为聚吡咯-氯化物和聚吡咯-碳纳米管薄膜选择了0.7 V和0.8 V的沉积电位。在聚吡咯-氯化物沉积物中,观察到氧化时阴离子的吸收。在聚吡咯-纳米管层中,当使用0.1 M KCl(aq)作为电解质时,观察到阳离子排出和阴离子在氧化时的混合吸收。但是,使用0.1 M的四丁基溴化铵,由于阳离子的体积大,只能观察到溴化物的吸收。除了这种复杂的电荷中和行为外,还直接使用质谱数据确认了氧化还原伪电容。 (C)2004 Elsevier B.V.保留所有权利。

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