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首页> 外文期刊>Electrochimica Acta >Preparation of High-performance Covalently Bonded Polyaniline Nanorods/Graphene Supercapacitor Electrode Materials using Interfacial Copolymerization Approach
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Preparation of High-performance Covalently Bonded Polyaniline Nanorods/Graphene Supercapacitor Electrode Materials using Interfacial Copolymerization Approach

机译:界面共聚法制备高性能共价键聚苯胺纳米棒/石墨烯超级电容器电极材料

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In this article, the polyaniline nanorods/graphene sheet composites (G-PANI) with covalent bond were synthesized through interfacial copolymerization of aniline and functionalized graphene (G-PPD) obtained by in situ reduction of graphene oxide and functionalization with para-phenylenediamine (PPD). During the interfacial polymerization, the monopolymerization of aniline and copolymerization of aniline and G-PPD are carried out simultaneously, which produce a mixture of PANI nanorods and G-PANI. Not only the homopolymer possesses one-dimensional structure, but also the graphene surface was covered evenly by the PANI nanorods. As comparison with conventional synthesis methods of PANI, the interfacial polymerization can produce large-scale one-dimensional PANI nanorods, which can form a loose crisscross aggregation. Even when it is grafted onto graphene sheet, the nanorod morphology is remained. The cyclic voltammetry (CV) and charge-discharge tests confirm that the G-PANI has higher electrochemical activity and higher capacitive properties over those of neat PANI nanorods. At the current density of 1 mAcm~(-2), the specific capacitance of G-PANI and PANI nanorods are 909 Fg~(-1) and 772 Fg~(-1), respectively. Especially, the specific capacitance of G-PANI has 62% enhancement over that of PANI nanorods at high current density of 50 mAcm~(-2). The remarkable improved capacity performance can be attributed to the enhanced mass transfer process brought from the loose nanostructure aggregation of G-PANI, as well as the reduced charge transfer resistance caused by the highly conductive graphene and strong interfacial interaction between PANI and graphene via covalent bond.
机译:本文通过苯胺的界面共聚和原位氧化石墨烯还原并用对苯二胺(PPD)官能化的官能化石墨烯(G-PPD)合成了具有共价键的聚苯胺纳米棒/石墨烯片状复合材料(G-PANI)。 )。在界面聚合过程中,苯胺的单聚和苯胺与G-PPD的共聚同时进行,产生了PANI纳米棒和G-PANI的混合物。均聚物不仅具有一维结构,而且石墨烯表面被PANI纳米棒均匀覆盖。与传统的PANI合成方法相比,界面聚合可产生大规模的一维PANI纳米棒,可形成松散的交叉聚集体。即使将其接枝到石墨烯片上,纳米棒的形貌仍然保留。循环伏安法(CV)和充放电测试证实,与纯PANI纳米棒相比,G-PANI具有更高的电化学活性和更高的电容性能。在1 mAcm〜(-2)的电流密度下,G-PANI和PANI纳米棒的比电容分别为909 Fg〜(-1)和772 Fg〜(-1)。特别是,在50 mAcm〜(-2)的高电流密度下,G-PANI的比电容比PANI纳米棒的比电容提高了62%。显着改善的容量性能归因于G-PANI的疏松纳米结构聚集带来的传质过程增强,以及高导电石墨烯和PANI与石墨烯之间通过共价键的强界面相互作用导致的电荷转移阻力降低。

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