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Controlled Multidirectional Particle Transportation by Magnetic Artificial Cilia

机译:由磁性人工纤毛控制的多向粒子运输

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摘要

Manipulation of particles in a controllable manner is highly desirable in many applications. Inspired by biological cilia, this article experimentally and numerically demonstrates a versatile particle transportation platform consisting of arrays of magnetic artificial cilia (MAC) actuated by a rotating magnet. By performing a tilted conical motion, the MAC are capable of transporting particles on their tips, along designated directions that can be fully controlled by the externally applied magnetic field, in both liquid and air, at high resolution (particle precision), with varying speeds and for a range of particle sizes. Moreover, the underlying mechanism of the controlled particle transportation is studied in depth by combining experiments with numerical simulations. The results show that the adhesion and friction between the particle and the cilia are essential ingredients of the mechanism underlying the multidirectional transportation. This work offers an advanced solution to controllably transport particles along designated paths in any direction over a surface, which has potential applications in diverse fields including lab-on-a-chip devices, in vitro biomedical sciences, and self-cleaning and antifouling.
机译:以可控方式操纵颗粒在许多应用中是非常理想的。通过生物纤毛的启发,本文通过实验和数值表现出由由旋转磁铁驱动的磁性人工纤毛(MAC)的阵列组成的通用颗粒运输平台。通过执行倾斜的圆锥运动,MAC能够在其尖端上以高分辨率(颗粒精密)在液体和空气中能够完全控制的指定方向,该倾斜锥形运动能够以高分辨率(颗粒精度)在液体和空气中完全控制的指定方向。以及一系列粒子尺寸。此外,通过将实验与数值模拟组合来研究受控颗粒运输的潜在机理。结果表明,颗粒和纤毛之间的粘附性和摩擦是多向运输潜在的机制的基本成分。这项工作提供了一种先进的解决方案,可在任何方向上沿着表面上的指定路径可控颗粒,这些路径在不同的领域中具有潜在的应用,包括实验室内的装置,体外生物医学科学以及自清洁和自清洁和自清洁和防污。

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