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通过使微流控装置变薄增强微米和纳米颗粒的声学聚焦

Enhancement in acoustic focusing of micro and nanoparticles by thinning a microfluidic device.

作者信息

Ota Nobutoshi, Yalikun Yaxiaer, Suzuki Tomoyuki, Lee Sang Wook, Hosokawa Yoichiroh, Goda Keisuke, Tanaka Yo

机构信息

Center for Biosystems Dynamics Research (BDR), RIKEN, 1-3 Yamadaoka, Suita, Osaka 565-0871, Japan.

Division of Materials Science, Nara Institute of Science and Technology, Ikoma, Takayama, Nara 630-0192, Japan.

出版信息

R Soc Open Sci. 2019 Feb 20;6(2):181776. doi: 10.1098/rsos.181776. eCollection 2019 Feb.

Abstract

The manipulation of micro/nanoparticles has become increasingly important in biological and industrial fields. As a non-contact method for particle manipulation, acoustic focusing has been applied in sorting, enrichment and analysis of particles with microfluidic devices. Although the frequency and amplitude of acoustic waves and the dimensions of microchannels have been recognized as important parameters for acoustic focusing, the thickness of microfluidic devices has not been considered so far. Here, we report that thin glass microfluidic devices enhance acoustic focusing of micro/nanoparticles. It was found that the thickness of a microfluidic device strongly influences its ability to focus particles via acoustic radiation, because the energy propagation of acoustic waves is affected by the total mass of the device. Acoustic focusing of submicrometre polystyrene beads and as well as enrichment of polystyrene beads were achieved in glass microfluidic devices as thin as 0.4 mm. Modifying the thickness of a microfluidic device can thus serve as a critical parameter for acoustic focusing when conventional parameters to achieve this effect are kept unchanged. Thus, our findings enable new approaches to the design of novel microfluidic devices.

摘要

在生物和工业领域,对微/纳米颗粒的操控变得越来越重要。作为一种用于颗粒操控的非接触方法,声聚焦已应用于使用微流控装置对颗粒进行分选、富集和分析。尽管声波的频率和振幅以及微通道的尺寸已被视为声聚焦的重要参数,但到目前为止,微流控装置的厚度尚未被考虑。在此,我们报告薄玻璃微流控装置可增强微/纳米颗粒的声聚焦。研究发现,微流控装置的厚度强烈影响其通过声辐射聚焦颗粒的能力,因为声波的能量传播受装置总质量的影响。在厚度仅为0.4毫米的玻璃微流控装置中实现了亚微米聚苯乙烯珠的声聚焦以及聚苯乙烯珠的富集。因此,当保持实现此效果的常规参数不变时,改变微流控装置的厚度可作为声聚焦的关键参数。因此,我们的发现为新型微流控装置的设计带来了新方法。

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