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Electrochemical supercapacitors based on a novel graphene/conjugated polymer composite system

机译:基于新型石墨烯/共轭聚合物复合体系的电化学超级电容器

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摘要

An efficient method for the preparation of a highly conducting hybrid material from graphene oxide nanosheets (GNS) and a novel conjugated polymer, poly(3,4-propylenedioxythiophene), is demonstrated. A functionalized monomer based on 3,4-propylenedioxythiophene, namely ProDOT-OH, was covalently functionalized with GNS, followed by oxidative polymerization to prepare GNS-f-PProDOT composites. The covalent functionalization process of GNS with the monomer ProDOT-OH was activated through the simple esterification reaction between the acyl chloride derivative on the nanosheets and the pendant hydroxyl group present in the monomer. Furthermore, the monomer functionalized GNS were co-polymerized with thiophene resulting in hybrid graphene nanostructures coated with highly conducting co-polymers with a room temperature electrical conductivity as high as 22.5 S cm(-1). The resulting hybrid materials were characterized using a range of analytical techniques. The specific capacitance value of the composite and the co-polymer hybrids at a scan rate of 10 mV s(-1) has been determined to be 158 and 201 F g(-1) respectively and hence particularly promising for supercapacitors.
机译:证明了一种有效的方法,用于从氧化石墨烯纳米片(GNS)和新型共轭聚合物聚(3,4-丙烯二氧噻吩)制备高导电杂化材料。将基于3,4-丙烯二氧噻吩的官能化单体ProDOT-OH与GNS共价官能化,然后进行氧化聚合,以制备GNS-f-PProDOT复合材料。 GNS与单体ProDOT-OH的共价官能化过程通过纳米片上的酰氯衍生物与单体中存在的侧羟基之间的简单酯化反应而激活。此外,将单体官能化的GNS与噻吩共聚,得到了杂化石墨烯纳米结构,其表面涂有高导电性共聚物,室温电导率高达22.5 S cm(-1)。使用多种分析技术对所得的杂化材料进行表征。扫描速度为10 mV s(-1)时,复合材料和共聚物杂化材料的比电容值分别确定为158和201 F g(-1),因此对于超级电容器特别有希望。

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