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Effect of temperature on the capacitance of carbon nanotube supercapacitors

机译:温度对碳纳米管超级电容器电容的影响

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摘要

The effect of temperature on the kinetics and the diffusion mechanism of the ions in a supercapacitor assembled with single-walled carbon nanotube (SWNT) film electrodes and an organic electrolyte were thoroughly investigated. An improved room temperature performance of the supercapacitor was observed due to the combined effects of an increase in the conductivity of the SWNT films and surface modifications on the SWNT films by repeatedly heating and cooling the supercapacitor between the temperatures of 25 and 100 °C. Modified Randles equivalent circuit was employed to carry out an extensive analysis of the Nyquist spectra measured at different temperatures between 25 and 100 °C in order to understand the fundamentals of the capacitive and resistive variations in the supercapacitor. The experimental results and their thorough analysis will have significant impact not only on the fundamental understanding of the temperature-dependent electrode/electrolyte interfacial properties but also on supercapacitor design with appropriate electrode materials for numerous industrial and consumer applications. The supercapacitor with SWNT film electrodes was capable of withstanding current densities as high as 100 A/g, yielding eminent specific power density values of about 55 kW/kg. Ultralong galvanostatic charge-discharge cycling over 200 000 cycles with a constant current density of 20 A/g at 25 and 100 °C, respectively, showed excellent stability in capacitance with more than 80% efficiency. The usage of such a supercapacitor potentially enables far-reaching advances in backup energy storage and high pulse power applications.
机译:深入研究了温度对单壁碳纳米管(SWNT)薄膜电极和有机电解质组装的超级电容器中离子动力学和扩散机理的影响。通过在25至100°C的温度下反复加热和冷却超级电容器,SWNT膜的电导率增加和SWNT膜上的表面改性共同作用,可以观察到超级电容器的室温性能得到改善。为了了解超级电容器中电容和电阻变化的基本原理,采用了改进的Randles等效电路对在25至100°C之间的不同温度下测得的奈奎斯特光谱进行了广泛的分析。实验结果及其详尽的分析将不仅对温度相关的电极/电解质界面特性的基本理解产生重大影响,而且还将对适用于众多工业和消费类应用的电极材料的超级电容器设计产生重大影响。具有SWNT薄膜电极的超级电容器能够承受高达100 A / g的电流密度,从而产生约55 kW / kg的卓越比功率密度值。超长恒电流充放电循环分别在25万和100°C下20万个恒定电流密度为20 A / g的循环中,显示出出色的电容稳定性,效率超过80%。这种超级电容器的使用有可能在备用能量存储和高脉冲功率应用中取得深远的进步。

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