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Controlled Propulsion of Two-Dimensional Microswimmers in a Precessing Magnetic Field

机译:在预先磁场中的二维微威尔控制推进

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摘要

Magnetically actuated micro-/nanoswimmers can potentially be used in noninvasive biomedical applications, such as targeted drug delivery and micromanipulation. Herein, two-dimensional (2D) rigid ferromagnetic microstructures are shown to be capable of propelling themselves in three dimensions at low Reynolds numbers in a precessing field. Importantly, the above propulsion relies neither on soft structure deformation nor on the geometrical chirality of swimmers, but is rather driven by the dynamic chirality generated by field precession, which allows an almost unconstrained choice of materials and fabrication methods. Therefore, the swimming performance is systematically investigated as a function of precession angle and geometric design. One disadvantage of the described propulsion method is that the fabricated 2D swimmers are achiral, which means that the forward/backward swimming direction cannot be controlled. However, it has been found that asymmetric 2D swimmers always propel themselves toward their longer arm, which implies that dynamic chirality can be constrained to be either right-handed or left-handed by permanent magnetization. Thus, the simplicity of fabrication and possibility of dynamic chirality control make the developed method ideal for applications and fundamental studies that require a large number of swimmers.
机译:磁致动力的微/纳米锭剂可能是在非侵入性生物医学应用中使用的,例如靶向药物递送和微操纵。这里,二维(2D)刚性铁磁性微结构被示出能够在预先生场中的低雷诺数的三维中引进。重要的是,上述推进性既不依靠柔软的结构变形,也不依靠游泳者的几何手足性,但是由现场进介产生的动态手性等级驱动,这允许几乎不受约束的材料选择和制造方法。因此,系统地研究了游泳性能作为预测角度和几何设计的函数。所描述的推进方法的一个缺点是制造的2D游泳运动员是成立的,这意味着不能控制前进/后向游泳方向。然而,已经发现,不对称的2D游泳运动员总是将自己推向他们的较长臂,这意味着动态手性可以被限制为右手或永久磁化的左手。因此,制造的简单性和动态手性控制的可能性使得开发方法适用于需要大量游泳运动员的应用和基本研究。

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