Bidirectional Propulsion of Arc‐Shaped Microswimmers Driven by Precessing Magnetic Fields

S. Mohanty, Q. Jin, G. P. Furtado, Arijit Ghosh, Gayatri J. Pahapale, I. Khalil, D. Gracias, S. Misra
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引用次数: 11

Abstract

The development of magnetically powered microswimmers that mimic the swimming mechanisms of microorganisms is important for lab‐on‐a‐chip devices, robotics, and next‐generation minimally invasive surgical interventions. Governed by their design, most previously described untethered swimmers can be maneuvered only by varying the direction of applied rotational magnetic fields. This constraint makes even state‐of‐the‐art swimmers incapable of reversing their direction of motion without a prior change in the direction of field rotation, which limits their autonomy and ability to adapt to their environments. Also, due to constant magnetization profiles, swarms of magnetic swimmers respond in the same manner, which limits multiagent control only to parallel formations. Herein, a new class of microswimmers are presented which are capable of reversing their direction of swimming without requiring a reversal in direction of field rotation. These swimmers exploit heterogeneity in their design and composition to exhibit reversible bidirectional motion determined by the field precession angle. Thus, the precession angle is used as an independent control input for bidirectional swimming. Design variability is explored in the systematic study of two swimmer designs with different constructions. Two different precession angles are observed for motion reversal, which is exploited to demonstrate independent control of the two swimmer designs.
利用进动磁场驱动的弧形微游泳体的双向推进
模拟微生物游动机制的磁动力微型游泳器的开发对于芯片上的实验室设备、机器人技术和下一代微创手术干预非常重要。根据他们的设计,大多数先前描述的无系游泳者只能通过改变施加旋转磁场的方向来操纵。这种限制使得即使是最先进的游泳者也无法在没有事先改变场旋转方向的情况下改变运动方向,这限制了他们的自主性和适应环境的能力。此外,由于磁化曲线不变,成群的磁性游泳者以相同的方式做出反应,这限制了多智能体控制只能在平行地层中进行。本文提出了一种新的微游泳者,它能够在不需要逆转磁场旋转方向的情况下改变其游泳方向。这些游泳者利用其设计和组成的异质性,表现出由场进动角决定的可逆双向运动。因此,进动角被用作双向游动的独立控制输入。系统研究了两种不同结构的游泳设计,探讨了设计变异性。两个不同的进动角被观察到运动反转,这是用来证明独立控制的两个游泳设计。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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