Wang Hao, Zhao Zifen, Liu Panpan, Pan Yang, Guo Xiaogang
Institute of Advanced Structure Technology, Beijing Institute of Technology, Beijing 100081, China.
Xuteli School, Beijing Institute of Technology, Beijing 100081, China.
ACS Appl Mater Interfaces. 2022 Sep 14;14(36):41283-41295. doi: 10.1021/acsami.2c09973. Epub 2022 Aug 29.
Laser-induced graphene (LIG) represents a fast-speed and low-cost method to prepare the customizable graphene-based patterns in complex configurations with exceptional electrical performance. This paper presents the applications of LIG formed on the commercial polyimide (PI) film as the stretchable strain sensor and electrical-actuated actuators. First, the conductive performances of the LIG were systematically revealed under different fabrication conditions via investigating the effects of processing parameters, and the fluence of the laser was experimentally demonstrated as the only crucial parameter to evaluate the LIG formation, facilitating the selection of optimized manufacturing parameters to prepare the LIG with desired electrical performances. Then, the LIG-based strain sensor which can undergo over 50% tensile strain was fabricated by transfer of the LIG from the PI film to polydimethylsiloxane. The variety of LIG-based electro-thermal actuators to achieve pre-designed 3D architectures was presented, along with their parameter analysis. After incorporating the multimeter system, the actuator can even feedback its transformation from 2D precursor to 3D architecture by monitoring the resistance variation of LIG, revealing the integrated capability of our design in serving as sensors and actuators. Finally, the wearable glove with the LIG sensors was presented to demonstrate its ability to remotely control the soft robotic hand.
激光诱导石墨烯(LIG)是一种快速且低成本的方法,可用于制备具有复杂结构且具备卓越电学性能的可定制石墨烯基图案。本文介绍了在商用聚酰亚胺(PI)薄膜上形成的LIG作为可拉伸应变传感器和电驱动致动器的应用。首先,通过研究工艺参数的影响,系统地揭示了不同制备条件下LIG的导电性能,并通过实验证明激光能量密度是评估LIG形成的唯一关键参数,这有助于选择优化的制造参数来制备具有所需电学性能的LIG。然后,通过将LIG从PI薄膜转移到聚二甲基硅氧烷上,制备了可承受超过50%拉伸应变的基于LIG的应变传感器。展示了多种基于LIG的电热致动器以实现预先设计的三维结构,并对其参数进行了分析。在集成万用表系统后,该致动器甚至可以通过监测LIG的电阻变化来反馈其从二维前驱体到三维结构的转变,揭示了我们的设计作为传感器和致动器的综合能力。最后,展示了带有LIG传感器的可穿戴手套,以证明其远程控制软机械手的能力。