电化学阻抗谱如何加深对超级电容器性能的认识

S. Zelinskyi, N. Stryzhakova, O. Gozhenko, Y. Maletin
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摘要

电化学阻抗谱已被用于表征双电层电容器,也称为超级电容器。研究了超级电容器电极材料的比表面积和孔径分布以及两种市售纳米多孔活性炭和两种石墨烯型材料的阻抗谱测量结果,并与不同电压范围和不同电流密度下超级电容器原型的循环伏安法和恒流充放电循环结果进行了比较。研究发现,通过不同的方法获得的超级电容器原型的特性结果差异不大,而三种研究方法都显示了纳米多孔活性炭材料比石墨烯材料的优势。此外,根据低频阻抗测量数据,石墨烯类材料与理想电容行为的偏差更大。本工作中使用的三种研究方法的比较表明,阻抗谱方法可以获得关于超级电容器系统性能特征的最完整和可靠的信息,因为不仅可以确定和考虑电容和电阻值,而且可以确定和考虑它们的频率依赖性,以及与奈奎斯特图中纯电容垂直线的偏差(以度为单位)和电容耗散。
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How the electrochemical impedance spectroscopy can deepen the understanding of supercapacitor performance
Electrochemical impedance spectroscopy has been used for the characterization of electric double layer capacitors also known as supercapacitors. Specific surface area and pore size distribution for supercapacitor electrode materials and the results of impedance spectroscopy measurements for two types of commercially available nanoporous activated carbons and two graphene-type materials have been studied and compared with the results obtained from cyclic voltammetry and galvanostatic charge-discharge cycling the supercapacitor prototypes in different voltage ranges and at different current densities. It has been found that the results for the characteristics of studied supercapacitor prototypes differ insignificantly if they were obtained by different methods, while all three research methods have shown the advantage of materials with nanoporous activated carbon over materials of the graphene type. Besides, according to the data obtained by measuring impedance at low frequencies the deviations from ideal capacitive behaviour are more significant in case of graphene-type materials. Comparison of the three research methods used in this work shows that the method of impedance spectroscopy makes it possible to obtain the most complete and reliable information on the performance characteristics of the supercapacitor system, since not only the capacitance and resistance values, but their frequency dependence, as well as deviations (in degrees) from the purely capacitive vertical line at Nyquist plots and capacitance dissipation can be determined and taken into consideration.
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