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单壁碳纳米管超级电容器在压缩应力下的电化学行为。

Electrochemical behavior of single-walled carbon nanotube supercapacitors under compressive stress.

机构信息

Department of Mechanical Engineering, University of Delaware, Newark, Delaware 19716, USA.

出版信息

ACS Nano. 2010 Oct 26;4(10):6039-49. doi: 10.1021/nn101595y.

Abstract

The effect of compressive stress on the electrochemical behavior of flexible supercapacitors assembled with single-walled carbon nanotube (SWNT) film electrodes and 1 M aqueous electrolytes with different anions and cations were thoroughly investigated. The under-pressed capacitive and resistive features of the supercapacitors were studied by means of cyclic voltammetry measurements and electrochemical impedance analysis. The results demonstrated that the specific capacitance increased first and saturated in corresponding decreases of the series resistance, the charge-transfer resistance, and the Warburg diffusion resistance under an increased pressure from 0 to 1723.96 kPa. Wettability as well as ion-size effect of different aqueous electrolytes played important roles to determine the pressure dependence behavior of the suerpcapacitors under an applied pressure. An improved high-frequency capacitive response with 1172 Hz knee frequency, which is significantly higher compared to reported values, was observed under the compressive pressure of 1723.96 kPa, indicating an improving and excellent high-power capability of the supercapacitors under the pressure. The experimental results and the thorough analysis described in this work not only provide fundamental insight of pressure effects on supercapacitors but also give an important guideline for future design of next generation flexible/stretchable supercapacitors for industrial and consumer applications.

摘要

我们深入研究了压缩应力对由单壁碳纳米管 (SWNT) 薄膜电极组装而成的柔性超级电容器的电化学行为的影响,以及在具有不同阴离子和阳离子的 1 M 水溶液电解质中的影响。通过循环伏安法测量和电化学阻抗分析研究了超级电容器的受压电容和电阻特性。结果表明,在从 0 增加到 1723.96 kPa 的压力下,随着串联电阻、电荷转移电阻和 Warburg 扩散电阻的相应降低,比电容先增加然后饱和。不同水溶液电解质的润湿性和离子尺寸效应对施加压力下超级电容器的压力依赖性行为起着重要作用。在 1723.96 kPa 的压缩压力下观察到 1172 Hz 拐点频率的高频电容响应得到显著改善,与报道值相比显著提高,这表明超级电容器在压力下具有改善的和优异的高功率能力。这项工作中描述的实验结果和深入分析不仅提供了对超级电容器中压力影响的基本了解,而且为未来用于工业和消费应用的下一代柔性/可拉伸超级电容器的设计提供了重要指导。

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