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首页> 外文期刊>Composites Science and Technology >Compact, flexible conducting polymer/graphene nanocomposites for supercapacitors of high volumetric energy density
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Compact, flexible conducting polymer/graphene nanocomposites for supercapacitors of high volumetric energy density

机译:紧凑,柔性的导电聚合物/石墨烯纳米复合材料,用于高体积能量密度的超级电容器

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Graphene is extensively utilized in energy storage devices because of its high surface area and electronic conductivity as well as ease of electrode fabrication. But graphene sheets often stack themselves in polymeric matrices leading to poor capacitive performance. This problem was addressed herein by developing and inserting respectively two types of nano-sized conducting polymers into graphene interlayer spacing. The resulting hydrogel composite electrodes demonstrated efficient electron transfer for fast and reversible Faradaic reactions at the interface. Theoretical modelling by the density functional theory suggested that the reduction involve 2H(+) transfer steps from polyaniline to graphene oxide: the first step would be an epoxy-ring opening process after activation of the C-O bond, and the second step would be C-O rupture leading to a de-epoxidation process. This binder-free electrode demonstrated high cycling performance and ultrahigh volumetric capacitance of 612 F cm(-3), being 10 times higher than the activated carbon used in the current industry. The study represents a step forward towards the fabrication of flexible, high-energy density supercapacitors. (C) 2018 Elsevier Ltd. All rights reserved.
机译:石墨烯由于其高的表面积和电子传导性以及易于电极制造而被广泛用于能量存储装置中。但是石墨烯片经常将其自身堆叠在聚合物基质中,从而导致差的电容性能。本文通过分别开发和将两种类型的纳米级导电聚合物插入石墨烯夹层间隔中来解决该问题。所得的水凝胶复合电极在界面处表现出有效的电子转移,可进行快速且可逆的法拉第反应。密度泛函理论的理论建模表明,还原反应涉及从聚苯胺到氧化石墨烯的2H(+)转移步骤:第一步是激活CO键后的环氧开环过程,第二步是CO断裂导致脱环氧化过程。这种无粘合剂的电极具有612 F cm(-3)的高循环性能和超高体积电容,比当前行业中使用的活性炭高10倍。这项研究代表了朝着制造柔性,高能量密度超级电容器迈出的一步。 (C)2018 Elsevier Ltd.保留所有权利。

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