磁场
材料科学
纳米技术
磁性纳米粒子
微尺度化学
上部结构
磁铁
机械工程
工程类
物理
纳米颗粒
数学教育
数学
量子力学
结构工程
作者
Fabian C. Landers,Valentin Gantenbein,Lukas Hertle,Andrea Veciana,Joaquin Llacer‐Wintle,Xiang‐Zhong Chen,Hao Ye,Carlos Franco,Josep Puigmartí‐Luis,Min‐Soo Kim,Bradley J. Nelson,Salvador Pané
出处
期刊:Cornell University - arXiv
日期:2023-01-01
标识
DOI:10.48550/arxiv.2310.04433
摘要
Magnetic microrobots have been developed for navigating microscale environments by means of remote magnetic fields. However, limited propulsion speeds at small scales remain an issue in the maneuverability of these devices as magnetic force and torque are proportional to their magnetic volume. Here, we propose a microrobotic superstructure, which, as analogous to a supramolecular system, consists of two or more microrobotic units that are interconnected and organized through a physical (transient) component (a polymeric frame or a thread). Our superstructures consist of microfabricated magnetic helical micromachines interlocked by a magnetic gelatin nanocomposite containing iron oxide nanoparticles (IONPs). While the microhelices enable the motion of the superstructure, the IONPs serve as heating transducers for dissolving the gelatin chassis via magnetic hyperthermia. In a practical demonstration, we showcase the superstructure's motion with a gradient magnetic field in a large channel, the disassembly of the superstructure and release of the helical micromachines by a high-frequency alternating magnetic field, and the corkscrew locomotion of the released helices through a small channel via a rotating magnetic field. This adaptable microrobotic superstructure reacts to different magnetic inputs, which could be used to perform complex delivery procedures within intricate regions of the human body.
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