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首页> 外文期刊>Electrochimica Acta >Scalable fabrication of a flexible interdigital micro-supercapacitor device by in-situ polymerization of pyrrole into hybrid PVA-TEOS membrane
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Scalable fabrication of a flexible interdigital micro-supercapacitor device by in-situ polymerization of pyrrole into hybrid PVA-TEOS membrane

机译:通过原位的柔性渐进式微外超涂物装置的可伸缩制造:吡咯斜体>吡咯聚合成杂交PVA-TEOS膜

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摘要

This paper addresses the development of an electrically conductive flexible nanocomposite membrane by the incorporation of an optimum amount of pyrrole into tetraethyl orthosilicate crosslinked poly(vinyl alcohol). The incorporated pyrrole underwentin-situchemical oxidation in presence of iron(III) chloride. The resulting membrane was subjected to various techniques to understand its physico-chemical properties. The nanocomposite membrane demonstrated an excellent electrical conductivity of 4.56?S?cm?1with a desired flexibility. The electrochemical properties of the electrode membrane were systematically investigated using cyclic voltammetry, galvanostatic charge-discharge and electrochemical impedance spectroscopy. The resulting electrode membrane exhibited a specific capacitance as high as 484?F?g-1?at a current density of 0.1?A?g?1with an excellent cycle life stability. Based on its excellent electrochemical performance, we have developed both interdigital micro-supercapacitor and sandwich-type supercapacitor devices; among these, the interdigital micro-supercapacitor exhibited a specific capacitance of 51.42?F?g-1?at 0.05?A?g?1, which is two times higher than that of sandwich-type supercapacitor (25.49?F?g?1). Furthermore, the method adopted here for the fabrication of an interdigital micro-supercapacitor device can be easily applied to large-scale fabrication of electrically conductive membranes and opens up new opportunities for flexible lightweight energy storage devices.
机译:本文通过将最佳量的吡咯加入到四乙基外硅酸盐交联聚(乙烯醇)中,地理解导电柔性纳米复合膜的开发。在铁(III)氯化铁(III)氯化物存在下掺入的吡咯近期氧化氧化。对所得膜进行各种技术,以了解其物理化学性质。纳米复合膜显示出优异的电导率为4.56Ω·cm 2,其具有所需的柔韧性。使用循环伏安法,电镀电荷 - 放电和电化学阻抗光谱系统地系统地研究了电极膜的电化学性质。所得电极膜的特定电容高达484Ω·f≤v-1?在电流密度为0.1Ω···1〜1,稳定寿命稳定性。基于其优异的电化学性能,我们开发了争端的微型超级电容器和夹层式超级电容器装置;其中,渐进式微超级电容器表现出51.42Ω·f?g-1的特定电容。在0.05?a?g≤1,这比夹心式超级电容器高两倍(25.49Ω··克?1 )。此外,这里采用的用于制造叉指微型超级电容器装置的方法可以容易地应用于导电膜的大规模制造,并为柔性轻质能量存储装置开辟了新的机会。

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