Zhao Yue, Zhang Yonghui, Chen Yang, Fu Haodong, Liu Hao, Song Jinlong, Liu Xin
State Key Laboratory of High-Performance Precision Manufacturing, Dalian University of Technology, Dalian 116024, China.
Materials (Basel). 2025 Apr 21;18(8):1880. doi: 10.3390/ma18081880.
Conventional LIG preparation mostly relies on the ablation process of a CO laser on a polyimide (PI) substrate but is limited by the sensitivity of the laser parameters, which is prone to PI film deformation, non-uniformity of the process, or LIG surface breakage problems. In this study, we present a new method to fabricate superhydrophobic laser-induced graphene (SH-LIG) surfaces by immobilizing the polyimide (PI) film on the copper sheet, which enables uniform laser processing (single pass laser etching) over a wider range of microsecond laser parameters (10.5-19.5 W). Subsequently, the SH-LIG was obtained by vacuum-assisted immersion in stearic acid, resulting in a water contact angle greater than 150°, roll angle stabilized at 6°, and hydrophobic stability at a high temperature of 90 °C. Analysis by Raman spectroscopy (Raman), X-ray photoelectron spectroscopy (XPS) and scanning electron microscopy (SEM) showed that the LIG fabricated at optimal power (19.5 W) had a more developed C sp network (I/I ≈ 0.5) and pore structure, which significantly improved the photothermal conversion efficiency (up to 252 °C in air and 180 °C on water). On this basis, a simple micro-driver based on SH-LIG was designed. Experiments showed that the maximum velocity of the SH-LIG boat can reach an adjustable propulsion velocity of 45.6 mm/s (related to the laser processing power and the intensity of the driving light), which is 132% higher than that of the LIG boat. This work provides insights into the preparation of high-quality LIG and their application in photothermally driven micro actuators, highlighting the synergies between structural optimization, surface engineering, and photothermal performance.
传统的激光诱导石墨烯(LIG)制备大多依赖于CO激光在聚酰亚胺(PI)基板上的烧蚀过程,但受激光参数敏感性的限制,容易出现PI膜变形、工艺不均匀或LIG表面破损等问题。在本研究中,我们提出了一种通过将聚酰亚胺(PI)膜固定在铜板上来制备超疏水激光诱导石墨烯(SH-LIG)表面的新方法,该方法能够在更宽的微秒激光参数范围(10.5 - 19.5 W)内实现均匀的激光加工(单次激光蚀刻)。随后,通过真空辅助浸入硬脂酸获得SH-LIG,其水接触角大于150°,滚动角稳定在6°,在90°C高温下具有疏水稳定性。拉曼光谱(Raman)、X射线光电子能谱(XPS)和扫描电子显微镜(SEM)分析表明,在最佳功率(19.5 W)下制备的LIG具有更发达的C sp网络(I/I ≈ 0.5)和孔隙结构,显著提高了光热转换效率(在空气中可达252°C,在水上可达180°C)。在此基础上,设计了一种基于SH-LIG的简单微驱动器。实验表明,SH-LIG船的最大速度可达45.6 mm/s的可调推进速度(与激光加工功率和驱动光强度有关),比LIG船高132%。这项工作为高质量LIG的制备及其在光热驱动微致动器中的应用提供了见解,突出了结构优化、表面工程和光热性能之间的协同作用。