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首页> 外文期刊>Current applied physics: the official journal of the Korean Physical Society >Electrochemical codeposition of graphene/polypyrrole composites on carbon paper for electrochemical capacitors
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Electrochemical codeposition of graphene/polypyrrole composites on carbon paper for electrochemical capacitors

机译:电化学电容器碳纸上石墨烯/聚吡咯复合材料的电化学托管

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摘要

A simple electrochemical codeposition technique has been introduced to fabricate graphene oxide/polypyrrole (GO/PPy) composites. To increase the adsorption of colloidal GOs at the liquid-liquid interface, the organic supporting electrolyte like benzenesulfonate sodium (BS) is added in GO/pyrrole micelle solution, which does not induce the flocculation sedimentation of GO at elevated ionic strength. The narrow size distribution of GO/pyrrole/BS micelles is benefit for uniform codeposition of GO/PPy on the carbon fiber surface. Moreover, the GO nanosheets and benzensulfonate have been incorporated into composites as mixture dopants, which increased the growth orientation of PPy in electropolymerization process and result in more loose structure for ionic transportation. The composites electrodes exhibit high specific capacitance, good cyclic stability after electrochemical reduction of graphene oxide (RGO). The specific capacitance of composite electrode with low mass density still reaches 358 F/g at scan rate of 10 mV/s within an electrochemical windows of 1.0 V. The strong interaction effect between two components resists the mechanical deformation effect and exhibits only 7.1% decay at a charge/discharge current of 3 A/g after 1000 cycles. At increasing the mass density of composites to 8.4 mg/cm(2), the areal capacitance of electrode almost grow linearly to 1.286 F/cm(2), which is more than triple that of BS-doped PPy with the same mass density. The high capacity of the composite electrode exerts the potential applications in capacitive deionization, microbial fuel cell or even capacitive energy storage. (C) 2016 Elsevier B.V. All rights reserved.
机译:已经引入了一种简单的电化学密码沉积技术以制造石墨烯/聚吡咯(GO / PPY)复合材料。为了增加液 - 液界面处的胶体GOS的吸附,在GO /吡咯胶束溶液中加入苯磺酸钠(BS)的有机载体电解质,其不会诱导升高离子强度的絮凝沉降。 GO /吡咯/ BS胶束的窄尺寸分布是碳纤维表面上的GO / PPY的均匀托管的效果。此外,GO纳米片和苯磺酸盐已作为混合掺杂剂掺入复合材料中,这增加了电聚合过程中PPY的生长取向,并导致离子运输更宽的结构。复合材料电极具有高比电容,电化学氧化物(RGO)电化学减少后的良好循环稳定性。具有低质量密度的复合电极的比电容仍然在1.0V的电化学窗口内以10mV / s的扫描速率达到358 f / g.两种组分之间的强相互作用效果抵抗机械变形效果,并且仅展示7.1%衰减在1000次循环后的充电/放电电流为3 A / g。在将复合材料的质量密度提高至8.4mg / cm(2)时,电极的面积电容几乎线性地生长至1.286f / cm(2),其大于具有相同质量密度的BS掺杂PPY的三倍。复合电极的高容量施加电容去离子,微生物燃料电池或甚至电容能量存储中的潜在应用。 (c)2016年Elsevier B.v.保留所有权利。

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