Dalian National Laboratory for Clean Energy, Dalian Institute of Chemical Physics, Chinese Academy of Sciences , 457 Zhongshan Road, Dalian 116023, PR China.
University of Chinese Academy of Sciences , 19 A Yuquan Road, Shijingshan District, Beijing 100049, PR China.
ACS Nano. 2017 Apr 25;11(4):4283-4291. doi: 10.1021/acsnano.7b01390. Epub 2017 Mar 31.
Micro-supercapacitors (MSCs) hold great promise as highly competitive miniaturized power sources satisfying the increased demand of smart integrated electronics. However, single-step scalable fabrication of MSCs with both high energy and power densities is still challenging. Here we demonstrate the scalable fabrication of graphene-based monolithic MSCs with diverse planar geometries and capable of superior integration by photochemical reduction of graphene oxide/TiO nanoparticle hybrid films. The resulting MSCs exhibit high volumetric capacitance of 233.0 F cm, exceptional flexibility, and remarkable capacity of modular serial and parallel integration in aqueous gel electrolyte. Furthermore, by precisely engineering the interface of electrode with electrolyte, these monolithic MSCs can operate well in a hydrophobic electrolyte of ionic liquid (3.0 V) at a high scan rate of 200 V s, two orders of magnitude higher than those of conventional supercapacitors. More notably, the MSCs show landmark volumetric power density of 312 W cm and energy density of 7.7 mWh cm, both of which are among the highest values attained for carbon-based MSCs. Therefore, such monolithic MSC devices based on photochemically reduced, compact graphene films possess enormous potential for numerous miniaturized, flexible electronic applications.
微型超级电容器 (MSCs) 作为极具竞争力的小型化电源,有望满足智能集成电子设备日益增长的需求。然而,具有高能量和功率密度的 MSC 的单步可扩展制造仍然具有挑战性。在这里,我们通过氧化石墨烯/二氧化钛纳米粒子杂化薄膜的光化学还原,展示了具有各种平面几何形状的基于石墨烯的单片 MSC 的可扩展制造,并且能够进行出色的集成。所得到的 MSC 表现出 233.0 F cm 的高体积电容、出色的灵活性以及在水凝胶电解质中进行模块化串联和并联集成的显著容量。此外,通过精确设计电极与电解质的界面,这些单片 MSC 可以在疏水电解质(离子液体)中在 200 V s 的高扫描速率下良好运行,比传统超级电容器高出两个数量级。更值得注意的是,MSC 显示出 312 W cm 的标志性体积功率密度和 7.7 mWh cm 的能量密度,这两者都是基于碳的 MSC 所达到的最高值之一。因此,基于光化学还原的紧凑型石墨烯薄膜的这种单片 MSC 器件具有在众多小型化、柔性电子应用中应用的巨大潜力。