Shi HaoTian H, Jang Sumyung, Naguib Hani E
Department of Mechanical Engineering , University of Toronto , 5 King's College Road , Toronto , Ontario M5S 3G8 , Canada.
Department of Materials Science & Engineering , 27 King's College Circle , Toronto , Ontario M5S 1A1 , Canada.
ACS Appl Mater Interfaces. 2019 Jul 31;11(30):27183-27191. doi: 10.1021/acsami.9b05811. Epub 2019 Jul 17.
Graphene microribbons (rGO-MRs) are highly desired for their high electrical conductivities and specific surface areas, which contribute to multiple applications in thin, flexible, textile supercapacitors, sensors, and actuators. Herein, we demonstrate a facile method for creating reduced graphene oxide microribbons with microscale architecture utilizing a simple blue-violet diode laser under ambient conditions. This method takes advantage of the photochemical reduction mechanism of self-assembled graphene oxide liquid crystals (GO-LC), allowing rGO-MR patterns to be directly printed on the solution surface. The rGO-MR films demonstrated tunable diameters and can be tailored into any geometries. A maximum intrinsic electrical conductivity for rGO-MR reaching 325.8 S/m was observed. The rGO-MR textile electrodes can be assembled into microsupercapacitors with a high areal specific capacitance of 14.4 mF/cm, a low charge-transfer impedance, and an exceptional cycling performance with a retained 96.8% capacitance after 10 000 cycles. The rGO-MR films also experience changes in resistance in response to the moisture adsorption from human breaths and therefore can also be employed as a breathing sensor for health monitoring. The presented facile method for creating multilayered rGO-MR films directly on liquid surfaces can further expand the potential for three-dimensional printing graphitic materials for various multifunctional applications.
石墨烯微带(rGO-MRs)因其高电导率和比表面积而备受关注,这使其在薄型、柔性、纺织超级电容器、传感器和致动器等多种应用中发挥作用。在此,我们展示了一种在环境条件下利用简单的蓝紫色二极管激光器创建具有微尺度结构的还原氧化石墨烯微带的简便方法。该方法利用了自组装氧化石墨烯液晶(GO-LC)的光化学还原机制,使rGO-MR图案能够直接印刷在溶液表面。rGO-MR薄膜的直径可调,并且可以定制成任何几何形状。观察到rGO-MR的最大本征电导率达到325.8 S/m。rGO-MR纺织电极可以组装成微型超级电容器,其具有14.4 mF/cm的高面积比电容、低电荷转移阻抗以及出色的循环性能,在10000次循环后电容保留率为96.8%。rGO-MR薄膜还会因吸附人体呼出的水分而导致电阻变化,因此也可用作健康监测的呼吸传感器。所提出的在液体表面直接创建多层rGO-MR薄膜的简便方法可以进一步拓展用于各种多功能应用的三维打印石墨材料的潜力。