School of Electronic Science and Engineering, National Laboratory of Solid-State Microstructures, Nanjing University, 210023, Nanjing, China.
Nat Commun. 2023 Jun 24;14(1):3786. doi: 10.1038/s41467-023-39524-z.
Ultracompact and soft pairwise grippers, capable of swift large-amplitude multi-dimensional maneuvering, are widely needed for high-precision manipulation, assembly and treatment of microscale objects. In this work, we demonstrate the simplest construction of such robotic structures, shaped via a single-nanowire-morphing and powered by geometry-tailored Lorentz vectorial forces. This has been accomplished via a designable folding growth of ultralong and ultrathin silicon NWs into single and nested omega-ring structures, which can then be suspended upon electrode frames and coated with silver metal layer to carry a passing current along geometry-tailored pathway. Within a magnetic field, the grippers can be driven by the Lorentz forces to demonstrate swift large-amplitude maneuvers of grasping, flapping and twisting of microscale objects, as well as high-frequency or even resonant vibrations to overcome sticky van de Waals forces in microscale for a reliable releasing of carried payloads. More sophisticated and functional teamwork of mutual alignment, precise passing and selective light-emitting-diode unit testing and installation were also successfully accomplished via pairwise gripper collaborations. This single-nanowire-morphing strategy provides an ideal platform to rapidly design, construct and prototype a wide range of advanced ultracompact nanorobotic, mechanical sensing and biological manipulation functionalities.
超紧凑和柔软的对向夹持器,能够快速进行大振幅多维机动,广泛应用于微尺度物体的高精度操作、装配和处理。在这项工作中,我们展示了这种机器人结构的最简单构造,通过单根纳米线变形,并通过量身定制的洛伦兹矢量力来提供动力。这是通过将超长超薄的硅纳米线设计成单环和嵌套的 omega 环结构来实现的,然后可以将其悬挂在电极框架上,并涂覆银金属层,以沿着量身定制的路径传输电流。在磁场中,夹持器可以被洛伦兹力驱动,从而演示对微尺度物体的快速大振幅抓取、拍打和扭转运动,以及高频甚至共振振动,以克服微尺度上的粘性范德华力,从而可靠地释放携带的有效载荷。通过两两夹持器的协作,还成功地完成了更复杂和功能性的互对齐、精确传递和选择性发光二极管单元测试和安装的协同工作。这种单根纳米线变形策略为快速设计、构建和原型化各种先进的超紧凑纳米机器人、机械传感和生物操作功能提供了理想的平台。