Zhao Ganggang, Ling Yun, Su Yajuan, Chen Zanyu, Mathai Cherian J, Emeje Ogheneobarome, Brown Alexander, Alla Dinesh Reddy, Huang Jie, Kim Chansong, Chen Qian, He Xiaoqing, Stalla David, Xu Yadong, Chen Zehua, Chen Pai-Yen, Gangopadhyay Shubhra, Xie Jingwei, Yan Zheng
Department of Mechanical and Aerospace Engineering, University of Missouri, Columbia, MO, USA.
Department of Surgery-Transplant and Mary and Dick Holland Regenerative Medicine Program, University of Nebraska Medical Center, Omaha, NE, USA.
Sci Adv. 2022 Jun 24;8(25):eabp9734. doi: 10.1126/sciadv.abp9734. Epub 2022 Jun 22.
Laser-assisted fabrication of conductive materials on flexible substrates has attracted intense interests because of its simplicity, easy customization, and broad applications. However, it remains challenging to achieve laser scribing of conductive materials on tissue-like soft elastomers, which can serve as the basis to construct bioelectronics and soft actuators. Here, we report laser scribing of metallic conductive, photoactive transition metal oxide (molybdenum dioxide) on soft elastomers, coated with molybdenum chloride precursors, under ambient conditions. Laser-scribed molybdenum dioxide (LSM) exhibits high electrical conductivity, biocompatibility, chemical stability, and compatibility with magnetic resonance imaging. In addition, LSM can be made on various substrates (polyimide, glass, and hair), showing high generality. Furthermore, LSM-based Janus on-skin electronics are developed to record information from human skin, human breath, and environments. Taking advantage of its outstanding photothermal effect, LSM-based soft actuators are developed to build light-driven reconfigurable three-dimensional architectures, reshapable airflow sensors, and smart robotic worms with bioelectronic sensors.
由于其简单性、易于定制和广泛的应用,在柔性基板上激光辅助制造导电材料引起了广泛关注。然而,在类似组织的软弹性体上实现导电材料的激光划刻仍然具有挑战性,而这种软弹性体可作为构建生物电子学和软致动器的基础。在此,我们报道了在环境条件下,在涂有氯化钼前驱体的软弹性体上对金属导电、光活性过渡金属氧化物(二氧化钼)进行激光划刻。激光划刻的二氧化钼(LSM)具有高电导率、生物相容性、化学稳定性以及与磁共振成像的兼容性。此外,LSM可以在各种基板(聚酰亚胺、玻璃和毛发)上制备,具有很高的通用性。此外,还开发了基于LSM的双面皮肤电子器件来记录来自人体皮肤、呼吸和环境的信息。利用其出色的光热效应,开发了基于LSM的软致动器,以构建光驱动的可重构三维结构、可重塑的气流传感器以及带有生物电子传感器的智能机器虫。