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首页> 外文期刊>ACS applied materials & interfaces >Facile Co-Electrodeposition Method for High-Performance Supercapacitor Based on Reduced Graphene Oxide/Polypyrrole Composite Film
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Facile Co-Electrodeposition Method for High-Performance Supercapacitor Based on Reduced Graphene Oxide/Polypyrrole Composite Film

机译:基于氧化石墨烯氧化物/聚吡咯复合膜的高性能超级电容器的容易共电沉积方法

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摘要

A facile co-electrodeposition method has been developed to fabricate reduced graphene oxide/polypyrrole (rGO/PPy) composite films, with sodium dodecyl benzene sulfonate as both a surfactant and supporting electrolyte in the precursor solution. The introduction of rGO into the PPy films forms porous structure and enhances the conductivity across the film, leading to superior electrochemical performance. By controlling the deposition time and rGO concentration,, the highest area capacitance can Teach 411 mF/cm(2) (0.2 mA/cm(2)) for rGO/PPy films, whereas optimized specific capacitance is as high as,361 Fig (0.2 rnA/cm(2)). All of the composite films exhibit excellent rate capability (at least 175 F/g at the Current density of 12 mA/cm(2)) compared with pure PPy film (only 12 F/g at the current density of 12 mA/cm(2)). The rGO/PPy composite exhibits excellent cycling stability that maintains 104% of its initial capacitance after cycling for 2000 cycles and 80% for 5000 cycles. The two-electrode solid-state supercapacitor (SC) based rGO/PPy composite electrodes demonstrates good rate performance, excellent, cycling stability, as well as a high area capacitance of 222 mF/cm(2). The solid-state planar SC based on the rGO/PPy composite exhibits an area capacitance of 9.4 mF/cm(2), demonstrating great potential for fabrication of microsupercapacitors.
机译:已经开发了一种容易的共电沉积方法以制造石墨烯/聚吡咯(RGO / PPY)复合膜,用十二烷基苯磺酸钠作为前体溶液中的表面活性剂和负载电解质。将RGO引入PPY薄膜形成多孔结构并增强膜的电导率,导致卓越的电化学性能。通过控制沉积时间和rgo浓度,最高面积电容可以为RGO / PPY薄膜教导411mF / cm(2)(0.2 mA / cm(2)),而优化的特定电容高于361( 0.2 RNA / cm(2))。与纯PPY膜相比,所有复合膜具有优异的速率能力(在电流密度为12 mA / cm(2)的电流密度)(仅12 f / g在12 mA / cm的电流密度( 2))。 RGO / PPY复合材料表现出优异的循环稳定性,在循环2000次循环后保持104%的初始电容,80%持续5000次循环。基于两个电极固态超级电容器(SC)的RGO / PPY复合电极显示出良好的速率性能,优异的循环稳定性,以及222mF / cm(2)的高面积电容。基于RGO / PPY复合材料的固态平面SC表现出9.4mF / cm(2)的区域电容,展示了微矿体的制造潜力。

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