法拉第电流
介电谱
超级电容器
循环伏安法
计时安培法
材料科学
水平扫描速率
水溶液
电压
电化学窗口
法拉第效率
电容
电解质
电容感应
电容器
电化学
电阻抗
分析化学(期刊)
电极
计算机科学
电气工程
化学
工作电极
色谱法
离子电导率
物理化学
操作系统
工程类
作者
Willian G. Nunes,Bruno Freitas,Renato Beraldo,Rubens Maciel Filho,Leonardo M. Da Silva,Hudson Zanin
标识
DOI:10.1038/s41598-020-75851-7
摘要
It is common to find in the literature different values for the working voltage window (WVW) range for aqueous-based supercapacitors. In many cases, even with the best intentions of the widening the operating voltage window, the measured current using the cyclic voltammetry (CV) technique includes a significant contribution from the irreversible Faradaic reactions involved in the water-splitting process, masked by fast scan rates. Sometimes even using low scan rates is hard to determine precisely the correct WVW of the aqueous-based electrochemical capacitor. In this sense, we discuss here the best practices to determine the WVW for capacitive current in an absence of water splitting using complementary techniques such as CV, chronoamperometry (CA), and the electrochemical impedance spectroscopy (EIS). To accomplish this end, we prepare and present a model system composed of multiwalled carbon nanotubes buckypaper electrodes housed in the symmetric coin cell and soaked with an aqueous-based electrolyte. The system electrochemical characteristics are carefully evaluated during the progressive enlargement of the cell voltage window. The presence of residual Faradaic current is verified in the transients from the CA study, as well as the impedance changes revealed by EIS as a function of the applied voltage, is discussed. We verify that an apparent voltage window of 2.0 V determined using the CV technique is drastically decreased to 1.2 V after a close inspection of the CA findings used to discriminate the presence of a parasitic Faradaic process. Some orientations are presented to instigate the establishment in the literature of some good scientific practices concerned with the reliable characterization of supercapacitors.
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