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晶圆级制造微纳气泡游泳者及其超声快速自主推进。

Wafer-Scale Fabrication of Micro- to Nanoscale Bubble Swimmers and Their Fast Autonomous Propulsion by Ultrasound.

机构信息

Department of Chemistry, University of Pennsylvania, Philadelphia, Pennsylvania 19104, United States.

Department of Surgery, University of Michigan, Ann Arbor, Michigan 48109, United States.

出版信息

ACS Nano. 2020 Jun 23;14(6):7520-7528. doi: 10.1021/acsnano.0c03311. Epub 2020 May 27.

DOI:10.1021/acsnano.0c03311
PMID:32432850
Abstract

Fuel-free, biocompatible swimmers with dimensions smaller than one micrometer have the potential to revolutionize the way we study and manipulate microscopic systems. Sub-micrometer, metallic Janus particles can be propelled rapidly and autonomously by acoustically induced fluid streaming, but their operation at acoustic pressure nodes limits their utility. In contrast, bubble-based microswimmers have an "on board" resonant cavity that enables them to operate far from the source of acoustic power. So far, they have been fabricated by direct writing techniques that limit both their minimum dimensions and the number that can be produced. Consequently, the size scaling of the properties of bubble swimmers has not been explored experimentally. Additionally, 3D autonomous motion has not yet been demonstrated for this type of swimmer. We describe here a method for fabricating bubble swimmers in large numbers (>10) with sizes ranging from 5 μm to 500 nm without direct writing or photolithographic tools. These swimmers follow a previously proposed scaling theory and reveal useful phenomena that enable their propulsion in different modes in the same experiment: with magnetic steering, autonomously in 3D, and in frequency-specific autonomous modes. These interesting behaviors are relevant to possible applications of autonomously moving micro- and nanorobots.

摘要

无燃料、生物兼容的微型游泳者,其尺寸小于一微米,有可能彻底改变我们研究和操控微观系统的方式。亚微米级的金属“詹尼斯”粒子可以通过声流诱导迅速、自主地推进,但由于它们在声压节点上运行,因此限制了其用途。相比之下,基于气泡的微型游泳者有一个“机载”谐振腔,使它们能够在远离声功率源的地方运行。到目前为止,它们是通过直接写入技术制造的,这限制了它们的最小尺寸和可生产的数量。因此,气泡游泳者的属性的尺寸缩放尚未通过实验进行探索。此外,这种类型的游泳者还没有展示过 3D 自主运动。我们在这里描述了一种在不使用直接写入或光刻工具的情况下,以 5μm 到 500nm 的尺寸大量(>10)制造气泡游泳者的方法。这些游泳者遵循了之前提出的缩放理论,并揭示了有用的现象,使其能够在同一实验中以不同模式推进:通过磁导向、3D 自主运动和特定频率的自主运动模式。这些有趣的行为与自主移动的微型和纳米机器人的可能应用相关。

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