一种新型的药物递送方法,利用一个微型机器人结合一个声振荡泡

J. Kwon, Ji Sun Yang, Jeong Byung Chae, Sang Kug Chung
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引用次数: 4

摘要

本文介绍了一种通过电磁驱动在人体血管中游动的无系绳微型机器人,该机器人利用附着在微型机器人上的声振荡气泡作为抓取工具来操纵生物/微型物体。首先,针对微型机器人在任意形状血管中的三维推进,设计制造了由水平和垂直对亥姆霍兹和麦克斯韦线圈组成的电磁系统,并从理论上验证了所设计系统产生的磁通密度。利用所开发的电磁系统,在x-y和x-z平面上成功地演示了由覆盖粘土的圆柱形磁铁制成的球形微机器人(直径800 μm)沿t形玻璃通道的推进。其次,利用集成变焦镜头和激光作为光源的高速摄像机,分别研究了声振荡气泡诱导的微流现象。当一个气泡在其固有频率附近受到压电致动器的声学激励时,它会振荡并同时产生微流和辐射力,这可以用来操纵(拉和推)邻近的物体。最后,作为概念证明,通过实验实现了微型机器人在具有串联矩形山丘的微制造通道中操纵鱼卵(800 μm)。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A novel drug delivery method by using a microrobot incorporated with an acoustically oscillating bubble
This paper presents an untethered microrobot swimming in human blood vessels through electromagnetic actuation to manipulate bio/micro-objects using an acoustically oscillating bubble attached on the microrobot as a grasping tool. First, for the three-dimensional (3D) propulsion of the microrobot in arbitrary shaped blood vessels, an electromagnetic system consisting of the horizontal and vertical pairs of Helmholtz and Maxwell electric coils is designed and manufactured along with the verification of the magnetic flux density generated from the designed system with theory. Using the developed electromagnetic system, the propulsion of a spherical microrobot (800 μm dia.) made of a cylindrical magnet covered with clay is successfully demonstrated in x-y and x-z plains along with a T-shaped glass channel. Second, an acoustically oscillating bubble induced microstreaming is separately investigated by using a high speed camera integrated with a zoom lens and laser as a light source. When a bubble is acoustically excited by a piezoactuator around its natural frequency, it oscillates and simultaneously generates microstreaming and radiation forces, which can be used to manipulate (pull and push) neighboring objects. Finally, as the concept proof, the manipulation of a fish egg (800 μm dia.) in a microfabricated channel with tandem rectangular hills is experimentally achieved by the microrobot incorporated with an acoustically oscillating bubble.
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