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基于激光诱导石墨烯的高压柔性微超级电容器。

High-Voltage Flexible Microsupercapacitors Based on Laser-Induced Graphene.

机构信息

Department of Mechanical Engineering , University of California , Berkeley , California 94709 , United States.

Key Laboratory of MEMS of the Ministry of Education , Southeast University , Nanjing 210096 , China.

出版信息

ACS Appl Mater Interfaces. 2018 Aug 8;10(31):26357-26364. doi: 10.1021/acsami.8b10301. Epub 2018 Jul 24.

Abstract

High-voltage energy-storage devices are quite commonly needed for robots and dielectric elastomers. This paper presents a flexible high-voltage microsupercapacitor (MSC) with a planar in-series architecture for the first time based on laser-induced graphene. The high-voltage devices are capable of supplying output voltages ranging from a few to thousands of volts. The measured capacitances for the 1, 3, and 6 V MSCs were 60.5, 20.7, and 10.0 μF, respectively, under an applied current of 1.0 μA. After the 5000-cycle charge-discharge test, the 6 V MSC retained about 97.8% of the initial capacitance. It also was recorded that the all-solid-state 209 V MSC could achieve a high capacitance of 0.43 μF at a low applied current of 0.2 μA and a capacitance of 0.18 μF even at a high applied current of 5.0 μA. We further demonstrate the robust function of our flexible high-voltage MSCs by using them to power a piezoresistive microsensor (6 V) and a walking robot (>2000 V). Considering the simple, direct, and cost-effective fabrication method of our laser-fabricated flexible high-voltage MSCs, this work paves the way and lays the foundation for high-voltage energy-storage devices.

摘要

高压储能装置在机器人和介电弹性体中应用非常广泛。本文首次提出了一种基于激光诱导石墨烯的平面串联结构的柔性高压微超级电容器(MSC)。这些高压器件能够提供几伏特到几千伏特的输出电压。在 1.0 μA 的应用电流下,1 V、3 V 和 6 V MSC 的测量电容分别为 60.5、20.7 和 10.0 μF。经过 5000 次充放电循环测试后,6 V MSC 保留了初始电容的约 97.8%。此外,还记录了全固态 209 V MSC 能够在 0.2 μA 的低应用电流下实现 0.43 μF 的高电容,甚至在 5.0 μA 的高应用电流下也能实现 0.18 μF 的电容。我们进一步通过使用这些柔性高压 MSC 为压阻式微传感器(6 V)和步行机器人(>2000 V)供电,展示了它们强大的功能。考虑到我们激光制造的柔性高压 MSC 的简单、直接和具有成本效益的制造方法,这项工作为高压储能装置铺平了道路,奠定了基础。

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