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一种基于 CNT/石墨烯/PANI 复合薄膜的动态可拉伸自修复超级电容器。

A dynamic stretchable and self-healable supercapacitor with a CNT/graphene/PANI composite film.

机构信息

Key Laboratory of Catalysis and Materials Science of the State Ethnic Affairs Commission & Ministry of Education, South-Central University for Nationalities, Wuhan, Hubei Province 430074, China.

出版信息

Nanoscale. 2018 Dec 21;10(47):22329-22334. doi: 10.1039/c8nr07991a. Epub 2018 Nov 23.

Abstract

Conventional flexible supercapacitors can work under consecutive bending, folding and even twisting without performance degradation. Nevertheless, these devices can hardly be used under large tensile strain. Flexible stretchable and healable supercapacitors are highly desired due to their many potential applications in electric devices. However, it is challenging to fabricate supercapacitors that can withstand stretchability and self-healability. Herein, we report a stretchable and self-healable supercapacitor based on a carbon nanotube@graphene@PANI nanowire film. The supercapacitor possesses high energy density from 36.3 to 29.4 μW h cm with the corresponding power density changing from 0.17 to 5 mW cm at a current from 0.1 to 3 mA, and the highest capacitive performance can reach up to 261.5 mF cm. In terms of the bending test, the supercapacitor can operate under different static bending angles and dynamic bending conditions with different bending frequencies, and the capacitance was merely affected. Moreover, the supercapacitor can sustain a tensile strain up to 180% and 80.2% capacitance retention after the 10 healing cycle. This novel design integrating all stretchable and healable components provides a pathway toward the next generation of wearable energy devices in modern electronics.

摘要

传统的柔性超级电容器可以在连续弯曲、折叠甚至扭曲的情况下工作,而不会出现性能下降。然而,这些设备很难在大拉伸应变下使用。由于其在电子设备中的许多潜在应用,人们非常希望拥有灵活的可拉伸和可修复的超级电容器。然而,制造能够承受可拉伸性和自修复性的超级电容器具有挑战性。在此,我们报告了一种基于碳纳米管@graphene@PANI 纳米线薄膜的可拉伸和自修复超级电容器。该超级电容器具有从 36.3 到 29.4 μW h cm 的高能量密度,相应的功率密度从 0.17 到 5 mW cm 变化,电流从 0.1 到 3 mA,最高电容性能可高达 261.5 mF cm。在弯曲测试方面,超级电容器可以在不同的静态弯曲角度和不同弯曲频率的动态弯曲条件下工作,电容仅受影响。此外,超级电容器在 10 次修复循环后可以承受高达 180%的拉伸应变和 80.2%的电容保持率。这种集成所有可拉伸和可修复组件的新型设计为现代电子学中下一代可穿戴能源设备提供了一条途径。

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