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基于低频弯曲波的微粒操控

Low-frequency flexural wave based microparticle manipulation.

作者信息

Bachman Hunter, Gu Yuyang, Rufo Joseph, Yang Shujie, Tian Zhenhua, Huang Po-Hsun, Yu Lingyu, Huang Tony Jun

机构信息

Department of Mechanical Engineering and Materials Science, Duke University, Durham, NC 27708, USA.

出版信息

Lab Chip. 2020 Apr 7;20(7):1281-1289. doi: 10.1039/d0lc00072h. Epub 2020 Mar 10.

DOI:10.1039/d0lc00072h
PMID:32154525
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC7392613/
Abstract

Manipulation of microparticles and bio-samples is a critical task in many research and clinical settings. Recently, acoustic based methods have garnered significant attention due to their relatively simple designs, and biocompatible and precise manipulation of small objects. Herein, we introduce a flexural wave based acoustofluidic manipulation platform that utilizes low-frequency (4-6 kHz) commercial buzzers to achieve dynamic particle concentration and translation in an open fluid well. The device has two primary modes of functionality, wherein particles can be concentrated in pressure nodes that are present on the bottom surface of the device, or particles can be trapped and manipulated in streaming vortices within the fluid domain; both of these functions result from flexural mode vibrations that travel from the transducers throughout the device. Throughout our research, we numerically and experimentally explored the wave patterns generated within the device, investigated the particle concentration phenomenon, and utilized a phase difference between the two transducers to achieve precision movement of fluid vortices and the entrapped particle clusters. With its simple, low-cost nature and open fluidic chamber design, this platform can be useful in many biological, biochemical, and biomedical applications, such as tumor spheroid generation and culture, as well as the manipulation of embryos.

摘要

在许多研究和临床环境中,对微粒和生物样本的操控是一项关键任务。近年来,基于声学的方法因其设计相对简单,以及对小物体具有生物相容性且操控精确而备受关注。在此,我们介绍一种基于弯曲波的声流操控平台,该平台利用低频(4 - 6 kHz)商用蜂鸣器在开放的流体池中实现动态粒子聚集和平移。该装置有两种主要功能模式,其中粒子可以聚集在装置底面出现的压力节点处,或者粒子可以被困在流体域内的流动涡旋中并进行操控;这两种功能均源于从换能器传播到整个装置的弯曲模式振动。在我们的整个研究过程中,我们通过数值模拟和实验探索了装置内产生的波形,研究了粒子聚集现象,并利用两个换能器之间的相位差实现流体涡旋和被困粒子簇的精确移动。凭借其简单、低成本的特性以及开放的流体腔室设计,该平台可用于许多生物学、生物化学和生物医学应用,如肿瘤球体的生成和培养以及胚胎的操控。

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