IBS Center for Integrated Nanostructure Physics, Institute for Basic Science (IBS), Daejon 305-701, Republic of Korea.
ACS Nano. 2013 Jul 23;7(7):5940-7. doi: 10.1021/nn4016345. Epub 2013 Jun 6.
We report a coaxial fiber supercapacitor, which consists of carbon microfiber bundles coated with multiwalled carbon nanotubes as a core electrode and carbon nanofiber paper as an outer electrode. The ratio of electrode volumes was determined by a half-cell test of each electrode. The capacitance reached 6.3 mF cm(-1) (86.8 mF cm(-2)) at a core electrode diameter of 230 μm and the measured energy density was 0.7 μWh cm(-1) (9.8 μWh cm(-2)) at a power density of 13.7 μW cm(-1) (189.4 μW cm(-2)), which were much higher than the previous reports. The change in the cyclic voltammetry characteristics was negligible at 180° bending, with excellent cycling performance. The high capacitance, high energy density, and power density of the coaxial fiber supercapacitor are attributed to not only high effective surface area due to its coaxial structure and bundle of the core electrode, but also all-carbon materials electrodes which have high conductivity. Our coaxial fiber supercapacitor can promote the development of textile electronics in near future.
我们报告了一种同轴纤维超级电容器,它由多壁碳纳米管涂覆的碳纤维束作为核心电极和碳纤维纸作为外部电极组成。通过每个电极的半电池测试确定了电极体积的比例。在核心电极直径为 230μm 的情况下,电容达到 6.3mFcm(-1)(86.8mFcm(-2)),在功率密度为 13.7μWcm(-1)(189.4μWcm(-2))的情况下,测量的能量密度为 0.7μWhcm(-1)(9.8μWhcm(-2)),远高于以前的报道。在 180°弯曲时,循环伏安特性的变化可以忽略不计,具有出色的循环性能。同轴纤维超级电容器的高电容、高能量密度和功率密度不仅归因于其同轴结构和核心电极的束所带来的高有效表面积,还归因于具有高导电性的全碳材料电极。我们的同轴纤维超级电容器有望在不久的将来推动纺织电子产品的发展。