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首页> 外文期刊>Journal of Materials Chemistry, A. Materials for energy and sustainability >Facile fabrication of three-dimensional highly ordered structural polyaniline-graphene bulk hybrid materials for high performance supercapacitor electrodes
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Facile fabrication of three-dimensional highly ordered structural polyaniline-graphene bulk hybrid materials for high performance supercapacitor electrodes

机译:高性能超级电容器电极的三维高序结构聚苯胺-石墨烯本体混合材料的简便制造

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摘要

A novel approach to constructing three-dimensional (3D) highly ordered structural polyaniline-graphene bulk hybrid materials was proposed for high performance supercapacitor electrodes, in which a functional molecule, sulfonated triazine (ST), was introduced and adsorbed on graphene sheets via hydrogen bonding and π-π stacking interactions. The aim of adding ST is to achieve better dispersion of graphene nanosheets in water, and subsequently induce heterogeneous nucleation of polyaniline (PANI) through electrostatic interactions. Thus, the PANI nanorods were impelled to grow vertically on both surfaces of the individual sulfonated triazine functional graphene nanosheets (STGNS) via in situ chemical oxidative polymerization of aniline in aqueous solution. The formation mechanism of well-controlled PANI nanorod array-sulfonated triazine functional graphene nanosheet (PANI-STGNS) hybrid materials was investigated in detail using a combination of UV-vis, FTIR, Raman spectroscopy and XRD. The optimized PANI-STGNS10 bulk hybrid material possesses a specific capacitance as high as 1225 F g~(-1) at 1 A g~(-1) together with outstanding rate capability and cycling stability, which are essential for its application in high performance supercapacitor electrodes.
机译:提出了一种用于构建高性能超级电容器电极的三维(3D)高序结构聚苯胺-石墨烯本体混合材料的新方法,其中引入了功能分子磺化三嗪(ST),并通过氢键吸附在石墨烯板上和π-π堆叠相互作用。添加ST的目的是使石墨烯纳米片更好地分散在水中,并随后通过静电相互作用诱导聚苯胺(PANI)的异相成核。因此,通过苯胺在水溶液中的原位化学氧化聚合反应,促使PANI纳米棒在单个磺化三嗪功能石墨烯纳米片(STGNS)的两个表面上垂直生长。结合紫外可见,FTIR,拉曼光谱和XRD,详细研究了可控的PANI纳米棒阵列-磺化三嗪功能石墨烯纳米片(PANI-STGNS)杂化材料的形成机理。经过优化的PANI-STGNS10本体混合材料在1 A g〜(-1)时具有高达1225 F g〜(-1)的比电容以及出色的速率性能和循环稳定性,这对于其在高性能领域的应用至关重要超级电容器电极。

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