College of Chemistry and Chemical Engineering, Engineering Research Center of Advanced Ferroelectric Functional Materials, Key Laboratory of Phytochemistry, Baoji University of Arts and Sciences, Baoji 721013, PR China.
College of Chemistry and Chemical Engineering, Engineering Research Center of Advanced Ferroelectric Functional Materials, Key Laboratory of Phytochemistry, Baoji University of Arts and Sciences, Baoji 721013, PR China.
J Colloid Interface Sci. 2018 Feb 15;512:300-307. doi: 10.1016/j.jcis.2017.10.067. Epub 2017 Oct 18.
It is a challenge to fabricate polyaniline (PANI) materials with high rate performance and excellent stability. Herein a new special supercapacitor electrode material of polyaniline-poly(hydroquinone)/graphene (PANI-PHQ/RGO) film with layered structure was prepared by chemical oxidative polymerization of aniline and hydroquinone (HQ) in the presence of RGO hydrogel film. The synergistic effect and loose layered structure of the composite film facilitate fast diffusion and transportation of electrolyte ions through unimpeded channels during rapid charge-discharge process, resulting in high rate capability and stable cycling performance. As a result, the PANI-PHQ/RGO-61 film electrode exhibited 356 F g at a current density of 0.5 A g and high capacitance retention of 83% from 0.5 to 30 A g. Moreover, it presented an excellent cycling stability with 94% of capacitance retention in comparison with 60% of pure PANI electrode and an outstanding Coulombic efficiency of 99% after 1000 cycles of galvanostatic charge-discharge. These superior electrocapacitive properties make it one of promising candidates for electrochemical energy storage.
制备具有高倍率性能和优异稳定性的聚苯胺(PANI)材料是一项挑战。本文通过在 RGO 水凝胶膜存在下,苯胺和对苯二酚(HQ)的化学氧化聚合,制备了具有层状结构的聚苯胺-聚(对苯二酚)/石墨烯(PANI-PHQ/RGO)薄膜这种新型特殊超级电容器电极材料。该复合薄膜的协同效应和疏松的层状结构有利于在快速充放电过程中通过无阻通道快速扩散和传输电解质离子,从而具有高倍率性能和稳定的循环性能。结果表明,在电流密度为 0.5 A g 时,PANI-PHQ/RGO-61 薄膜电极的比电容为 356 F g,在 0.5 至 30 A g 的范围内,比电容保持率为 83%。此外,与纯 PANI 电极的 60%相比,其具有优异的循环稳定性,在 1000 次恒流充放电循环后,电容保持率为 94%,库仑效率为 99%。这些优异的电容性能使其成为电化学储能的有前途的候选材料之一。