Department of Mechanical Engineering, Stanford University, Stanford, CA, 94305, USA.
Stanford Cardiovascular Institute and Division of Cardiovascular Medicine, Department of Medicine, Stanford University School of Medicine, Stanford, CA, 94305, USA.
Nat Commun. 2022 Jun 14;13(1):3118. doi: 10.1038/s41467-022-30802-w.
Wireless millimeter-scale origami robots have recently been explored with great potential for biomedical applications. Existing millimeter-scale origami devices usually require separate geometrical components for locomotion and functions. Additionally, none of them can achieve both on-ground and in-water locomotion. Here we report a magnetically actuated amphibious origami millirobot that integrates capabilities of spinning-enabled multimodal locomotion, delivery of liquid medicine, and cargo transportation with wireless operation. This millirobot takes full advantage of the geometrical features and folding/unfolding capability of Kresling origami, a triangulated hollow cylinder, to fulfill multifunction: its geometrical features are exploited for generating omnidirectional locomotion in various working environments through rolling, flipping, and spinning-induced propulsion; the folding/unfolding is utilized as a pumping mechanism for controlled delivery of liquid medicine; furthermore, the spinning motion provides a sucking mechanism for targeted solid cargo transportation. We anticipate the amphibious origami millirobots can potentially serve as minimally invasive devices for biomedical diagnoses and treatments.
无线毫米级折纸机器人在生物医学应用方面具有巨大的潜力,最近得到了广泛的探索。现有的毫米级折纸设备通常需要单独的几何组件来实现运动和功能。此外,它们都无法实现陆地和水中的运动。在这里,我们报告了一种磁驱动的水陆两栖折纸毫机器人,它集成了旋转驱动的多模态运动、液体药物输送和货物运输的功能,并且可以进行无线操作。这个毫机器人充分利用了 Kresling 折纸的几何特征和折叠/展开能力,实现了多功能:它的几何特征被利用来通过滚动、翻转和旋转诱导推进来实现各种工作环境中的全方位运动;折叠/展开被用作液体药物的受控输送的泵送机制;此外,旋转运动提供了针对固体货物运输的抽吸机制。我们预计水陆两栖折纸毫机器人有望成为用于生物医学诊断和治疗的微创设备。