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基于超长二氧化锰/聚苯胺同轴纳米线网络的高性能全固态超级电容器

High Performance All-solid Supercapacitors Based on the Network of Ultralong Manganese dioxide/Polyaniline Coaxial Nanowires.

作者信息

Zhou Junli, Yu Lin, Liu Wei, Zhang Xiaodan, Mu Wei, Du Xu, Zhang Zhe, Deng Yulin

机构信息

Faculty of Chemical Engineering and Light Industry, Guangdong University of Technology, Guangzhou 510006, Guangdong, China.

School of Chemical &Biomolecular Engineering, Georgia Institute of Technology, Atlanta, GA 30332, USA.

出版信息

Sci Rep. 2015 Dec 8;5:17858. doi: 10.1038/srep17858.

Abstract

In recent years, thin, lightweight and flexible solid supercapacitors are of considerable interest as energy storage devices. Here we demonstrated all-solid supercapacitors (SSCs) with high electrochemical properties, low self-discharge characteristics based on manganese dioxide/polyaniline (MNW/PANI) coaxial nanowire networks. The synergistic effect of MnO2/PANI plus the unique coaxial nanostructure of the ultralong nanowires with a highly interconnected network effectively enhance the conductivity and capacitive performance of the SSCs device. The MNW/PANI composite with 62.5% MnO2 exhibits an outstanding areal specific capacitance reaching 346 mF/cm(2) at 5 mV s(-1) which is significant higher than most previously reported solid supercapacitors (15.3 mF/cm(2)-109 mF/cm(2)) and is close to the that of the best graphene films solid state supercapacitors (372 mF/cm(2)). In contrast, only 190 mF/cm(2) of areal specific capacitance was obtained for the pure MnO2 NW network. The supercapacitors also exhibited low leakage current as small as 20.1 μA, which demonstrated that the MNW/PANI SSCs have great potential for practical applications.

摘要

近年来,作为储能装置,轻薄且灵活的固体超级电容器备受关注。在此,我们展示了基于二氧化锰/聚苯胺(MnO₂/PANI)同轴纳米线网络的具有高电化学性能、低自放电特性的全固态超级电容器(SSCs)。MnO₂/PANI的协同效应加上超长纳米线独特的同轴纳米结构以及高度互连的网络,有效地提高了SSCs器件的导电性和电容性能。含有62.5%MnO₂的MnO₂/PANI复合材料在5 mV s⁻¹时表现出出色的面积比电容,达到346 mF/cm²,这显著高于大多数先前报道的固体超级电容器(15.3 mF/cm² - 109 mF/cm²),并接近最佳石墨烯薄膜固态超级电容器的面积比电容(372 mF/cm²)。相比之下,纯MnO₂纳米线网络的面积比电容仅为190 mF/cm²。该超级电容器还表现出低至20.1 μA的漏电流,这表明MnO₂/PANI SSCs具有巨大的实际应用潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d1d5/4672316/a890b6bf734f/srep17858-f1.jpg

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