Gao Yan, Zhai Yujiang, Wang Guantao, Liu Fu, Duan Haibin, Ding Xilun, Luo Sida
School of Mechanical Engineering & Automation, Beihang University, No. 37 Xueyuan Road, Beijing, 100191, China.
School of Automation Science and Electrical Engineering, Beihang University, No. 37 Xueyuan Road, Beijing, 100191, China.
Adv Sci (Weinh). 2022 May;9(15):e2200362. doi: 10.1002/advs.202200362. Epub 2022 Mar 24.
Macroscopic 3D graphene has become a significant topic for satisfying the continuously upgraded smart structures and devices. Compared with liquid assembling and catalytic templating methods, laser-induced graphene (LIG) is showing facile and scalable advantages but still faces limited sizes and geometries by using template induction or on-site lay-up strategies. In this work, a new LIG protocol is developed for facile stacking and shaping 3D LIG macrostructures by laminating layers of LIG papers (LIGPs) with combined resin infiltration and hot pressing. Specifically, the constructed 3D LIGP composites (LIGP-C) are compatible with large area, high thickness, and customizable flat or curved shapes. Additionally, systematic research is explored for investigating critical processing parameters on tuning its multifunctional properties. As the laminated layers are stacked from 1 to 10, it is discovered that piezoresistivity (i.e., gauge factor) of LIGP-C dramatically reflects an ≈3900% improvement from 0.39 to 15.7 while mechanical and electrical properties maintain simultaneously at the highest levels, attributed to the formation of densely packed fusion layers. Along with excellent durability for resisting multiple harsh environments, a sensor-array system with 5 × 5 LIGP-C elements is finally demonstrated on fiber-reinforced polymeric composites for accurate strain mapping.
宏观三维石墨烯已成为满足不断升级的智能结构和器件需求的重要课题。与液体组装和催化模板法相比,激光诱导石墨烯(LIG)展现出简便且可扩展的优势,但通过模板诱导或现场铺层策略,其尺寸和几何形状仍受到限制。在这项工作中,开发了一种新的激光诱导石墨烯协议,通过将激光诱导石墨烯纸(LIGP)层与树脂渗透和热压相结合,实现三维LIG宏观结构的简便堆叠和成型。具体而言,构建的三维LIGP复合材料(LIGP-C)具有大面积、高厚度以及可定制的平面或曲面形状。此外,还进行了系统研究,以探究关键加工参数对其多功能性能的影响。当层压层数从1增加到10时,发现LIGP-C的压阻率(即应变片系数)显著提高,从0.39提升至15.7,提高了约3900%,同时机械性能和电学性能保持在最高水平,这归因于致密堆积融合层的形成。除了具有抵抗多种恶劣环境的出色耐久性外,最终在纤维增强聚合物复合材料上展示了一个由5×5个LIGP-C元件组成的传感器阵列系统,用于精确的应变映射。