Institute for Advanced Ceramics, Harbin Institute of Technology , Harbin 150001, China.
School of Materials, University of Manchester , Manchester M13 9PL, U.K.
ACS Appl Mater Interfaces. 2017 Jun 14;9(23):19831-19842. doi: 10.1021/acsami.7b03786. Epub 2017 Jun 2.
A facile co-electrodeposition method has been developed to fabricate reduced graphene oxide/polypyrrole (rGO/PPy) composite films, with sodium dodecyl benzene sulfonate as both a surfactant and supporting electrolyte in the precursor solution. The introduction of rGO into the PPy films forms porous structure and enhances the conductivity across the film, leading to superior electrochemical performance. By controlling the deposition time and rGO concentration, the highest area capacitance can reach 411 mF/cm (0.2 mA/cm) for rGO/PPy films, whereas optimized specific capacitance is as high as 361 F/g (0.2 mA/cm). All of the composite films exhibit excellent rate capability (at least 175 F/g at the current density of 12 mA/cm) compared with pure PPy film (only 12 F/g at the current density of 12 mA/cm). The rGO/PPy composite exhibits excellent cycling stability that maintains 104% of its initial capacitance after cycling for 2000 cycles and 80% for 5000 cycles. The two-electrode solid-state supercapacitor (SC) based on rGO/PPy composite electrodes demonstrates good rate performance, excellent cycling stability, as well as a high area capacitance of 222 mF/cm. The solid-state planar SC based on the rGO/PPy composite exhibits an area capacitance of 9.4 mF/cm, demonstrating great potential for fabrication of microsupercapacitors.
一种简便的共电沉积方法被开发用来制备还原氧化石墨烯/聚吡咯(rGO/PPy)复合薄膜,在前驱体溶液中,使用十二烷基苯磺酸钠作为表面活性剂和支持电解质。rGO 的引入形成了多孔结构,增强了整个薄膜的导电性,从而获得了卓越的电化学性能。通过控制沉积时间和 rGO 浓度,可以使 rGO/PPy 薄膜的面积电容达到 411 mF/cm(0.2 mA/cm),而优化后的比电容高达 361 F/g(0.2 mA/cm)。与纯 PPy 薄膜相比(在 12 mA/cm 的电流密度下仅为 12 F/g),所有复合薄膜都表现出出色的倍率性能(在 12 mA/cm 的电流密度下至少为 175 F/g)。rGO/PPy 复合薄膜表现出出色的循环稳定性,在 2000 次循环后保持其初始电容的 104%,在 5000 次循环后仍保持 80%。基于 rGO/PPy 复合电极的两电极固态超级电容器(SC)表现出良好的倍率性能、优异的循环稳定性以及 222 mF/cm 的高面积电容。基于 rGO/PPy 复合薄膜的固态平面 SC 表现出 9.4 mF/cm 的面积电容,为制造微型超级电容器展示了巨大的潜力。