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Artificial Swimmers Propelled by Acoustically Activated Flagella

机译:声激发鞭毛推动人工游泳

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Recent studies have garnered considerable interest in the field of propulsion to maneuver micro- and nanosized objects. Acoustics provide an alternate and attractive method to generate propulsion. To date, most acoustic-based swimmers do not use structural resonances, and their motion is determined by a combination of bulk acoustic streaming and a standing-wave field. The resultant field is intrinsically dependent on the boundaries of their resonating chambers. Though acoustic based propulsion is appealing in biological contexts, existing swimmers are less efficient, especially when operating in vivo, since no predictable standing-wave can be established in a human body. Here we describe a new class of nanoswimmer propelled by the small-amplitude oscillation of a flagellum-like flexible tail in standing and, more importantly, in traveling acoustic waves. The artificial nanoswimmer, fabricated by multistep electrodeposition techniques, compromises a rigid bimetallic head and a flexible tail. During acoustic excitation of the nanoswimmer the tail structure oscillates, which leads to a large amplitude propulsion in traveling waves. FEM simulation results show that the structural resonances lead to high propulsive forces.
机译:最近的研究在推进操纵微米和纳米尺寸物体的领域中引起了相当大的兴趣。声学提供了一种产生吸引力的替代方法。迄今为止,大多数基于声学的游泳者并不使用结构共振,并且其运动是由体声流和驻波场的组合来确定的。合成场本质上取决于其谐振腔的边界。尽管基于声学的推进在生物学环境中很有吸引力,但是现有的游泳者效率较低,尤其是在体内操作时,因为在人体中无法建立可预测的驻波。在这里,我们描述了由鞭毛状柔性尾部的小振幅振荡推动的一类新型纳米游泳器,站立时,更重要的是在行进的声波中。通过多步电沉积技术制造的人工纳米游泳器,具有刚性的双金属头和柔性的尾巴。在纳米游泳者的声激发期间,尾部结构振动,这导致行波中的大幅度推进。有限元仿真结果表明,结构共振导致较高的推进力。

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