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基于原始和 MnO2 涂层碳纳米管纤维的可拉伸线状不对称超级电容器。

Stretchable Wire-Shaped Asymmetric Supercapacitors Based on Pristine and MnO2 Coated Carbon Nanotube Fibers.

机构信息

†College of Textiles, Donghua University, Shanghai, 201620, P. R. China.

‡Department of Mechanical Engineering, University of Delaware, Newark, Delaware 19716, United States.

出版信息

ACS Nano. 2015 Jun 23;9(6):6088-96. doi: 10.1021/acsnano.5b01244. Epub 2015 May 15.

Abstract

While the emerging wire-shaped supercapacitors (WSS) have been demonstrated as promising energy storage devices to be implemented in smart textiles, challenges in achieving the combination of both high mechanical stretchability and excellent electrochemical performance still exist. Here, an asymmetric configuration is applied to the WSS, extending the potential window from 0.8 to 1.5 V, achieving tripled energy density and doubled power density compared to its asymmetric counterpart while accomplishing stretchability of up to 100% through the prestrainning-then-buckling approach. The stretchable asymmetric WSS constituted of MnO2/CNT hybrid fiber positive electrode, aerogel CNT fiber negative electrode and KOH-PVA electrolyte possesses a high specific capacitance of around 157.53 μF cm(-1) at 50 mV s(-1) and a high energy density varying from 17.26 to 46.59 nWh cm(-1) with the corresponding power density changing from 7.63 to 61.55 μW cm(-1). Remarkably, a cyclic tensile strain of up to 100% exerts negligible effects on the electrochemical performance of the stretchable asymmetric WSS. Moreover, after 10,000 galvanostatic charge-discharge cycles, the specific capacitance retains over 99%, demonstrating a long cyclic stability.

摘要

虽然新兴的线状超级电容器 (WSS) 已被证明是很有前途的储能设备,可以应用于智能纺织品中,但在实现高机械拉伸性和优异电化学性能的结合方面仍存在挑战。在这里,我们将不对称结构应用于 WSS,将其工作电压窗口从 0.8 V 扩展到 1.5 V,与对称结构相比,能量密度提高了两倍,功率密度提高了一倍,同时通过预拉伸然后屈曲的方法实现了高达 100%的拉伸性。由 MnO2/CNT 混合纤维正极、气凝胶 CNT 纤维负极和 KOH-PVA 电解质组成的可拉伸不对称 WSS,在 50 mV s(-1)下具有约 157.53 μF cm(-1)的高比电容,能量密度从 17.26 到 46.59 nWh cm(-1)变化,相应的功率密度从 7.63 到 61.55 μW cm(-1)变化。值得注意的是,高达 100%的循环拉伸应变对可拉伸不对称 WSS 的电化学性能几乎没有影响。此外,经过 10,000 次恒流充放电循环后,比电容保留超过 99%,表现出长循环稳定性。

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