Kwon Hyungho, Han Dong Jin, Lee Byung Yang
Department of Mechanical Engineering, Korea University Seoul 02841 Korea
RSC Adv. 2020 Nov 13;10(68):41495-41502. doi: 10.1039/d0ra08064k. eCollection 2020 Nov 11.
Supercapacitors are strong future candidates for energy storage devices owing to their high power density, fast charge-discharge rate, and long cycle stability. Here, a flexible supercapacitor with a large specific capacitance of 443 F g at a scan rate of 2 mV s is demonstrated using nanotube-reinforced polypyrrole nanowires with hollowed cavities grown vertically on a nanotube/graphene based film. Using these electrodes, we obtain improved capacitance, rate capability, and cycle stability for over 3000 cycles. The assembled all-solid-state supercapacitor exhibits excellent mechanical flexibility, with the capacity to endure a 180° bending angle along with a maximum specific and volumetric energy density of 7 W h kg (8.2 mW h cm) at a power density of 75 W kg (0.087 W cm), and it showed an energy density of 4.13 W h kg (4.82 mW h cm) even at a high power density of 3.8 kW kg (4.4 W cm). Also, it demonstrates a high cycling stability of 94.3% after 10 000 charge/discharge cycles at a current density of 10 A g. Finally, a foldable all-solid-state supercapacitor is demonstrated, which confirms the applicability of the reported supercapacitor for use in energy storage devices for future portable, foldable, or wearable electronics.
超级电容器因其高功率密度、快速充放电速率和长循环稳定性,是储能设备未来强有力的候选者。在此,利用在基于纳米管/石墨烯的薄膜上垂直生长的具有中空腔体的纳米管增强聚吡咯纳米线,展示了一种在扫描速率为2 mV s时比电容高达443 F g的柔性超级电容器。使用这些电极,我们获得了超过3000次循环的改进电容、倍率性能和循环稳定性。组装的全固态超级电容器表现出优异的机械柔韧性,能够承受180°的弯曲角度,在功率密度为75 W kg(0.087 W cm)时最大比能量密度和体积能量密度分别为7 W h kg(8.2 mW h cm),甚至在3.8 kW kg(4.4 W cm)的高功率密度下,其能量密度仍为4.13 W h kg(4.82 mW h cm)。此外,在10 A g的电流密度下进行10000次充放电循环后,它展示出94.3%的高循环稳定性。最后,展示了一种可折叠的全固态超级电容器,这证实了所报道的超级电容器在未来便携式、可折叠或可穿戴电子产品的储能设备中的适用性。