Sun Yimin, Fang Zheng, Wang Chenxu, Zhou Aijun, Duan Hongwei
School of Material Science and Engineering, Wuhan Institute of Technology, Wuhan, Hubei 430073, People's Republic of China.
Nanotechnology. 2015 Sep 18;26(37):374002. doi: 10.1088/0957-4484/26/37/374002. Epub 2015 Aug 28.
The growing demand for lightweight and flexible supercapacitor devices necessitates innovation in electrode materials and electrode configuration. We have developed a new type of three-dimensional (3D) flexible nanohybrid electrode by incorporating nanoporous polyaniline (PANI) into layer-by-layer ionic liquid (IL) functionalized carbon nanotube (CNT)-graphene paper (GP), and explored its practical application as a freestanding flexible electrode in a supercapacitor. Our results have demonstrated that the surface modification of graphene nanosheets and CNTs by hydrophilic IL molecules makes graphene and CNTs well-dispersed in aqueous solution, and also improves the hydrophility of the assembled graphene-based paper. Furthermore, the integration of highly conductive one-dimensional (1D) CNTs with two-dimensional (2D) graphene nanosheets leads to 3D sandwich-structured nanohybrid paper with abundant interconnected pores, which is preferred for fast mass and electron transport kinetics. For in situ electropolymerization of PANI on paper electrodes, the IL functionalized CNT-GP (IL-CNT-GP) offers large surface area and interlayer spacing and the unique π surface of graphene and CNTs for efficient and stable loading of PANI. A key finding is that the structural integration of multiple components in this 3D freestanding flexible sheet electrode gives rise to a synergic effect, leading to a high capacitance of 725.6 F g(-1) at a current density of 1 A g(-1) and good cycling stability by retaining 90% of the initial specific capacitance after 5000 cycles.
对轻质且柔性的超级电容器器件不断增长的需求,使得电极材料和电极结构方面的创新成为必要。我们通过将纳米多孔聚苯胺(PANI)掺入逐层离子液体(IL)功能化的碳纳米管(CNT)-石墨烯纸(GP)中,开发出了一种新型的三维(3D)柔性纳米混合电极,并探索了其作为超级电容器中独立柔性电极的实际应用。我们的结果表明,亲水性IL分子对石墨烯纳米片和CNT的表面改性使得石墨烯和CNT在水溶液中良好分散,同时也提高了组装的石墨烯基纸的亲水性。此外,高导电性的一维(1D)CNT与二维(2D)石墨烯纳米片的整合产生了具有丰富相互连通孔隙的3D三明治结构纳米混合纸,这对于快速的质量和电子传输动力学是有利的。对于在纸电极上原位电聚合PANI,IL功能化的CNT-GP(IL-CNT-GP)提供了大表面积和层间距以及石墨烯和CNT独特的π表面,用于高效且稳定地负载PANI。一个关键发现是,这种3D独立柔性片状电极中多种组分的结构整合产生了协同效应,在电流密度为1 A g(-1)时导致725.6 F g(-1)的高电容,并且在5000次循环后通过保留90%的初始比电容而具有良好的循环稳定性。