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基于连续微涡的聚焦表面声波纳米粒子操控。

Continuous micro-vortex-based nanoparticle manipulation via focused surface acoustic waves.

机构信息

Pillar of Engineering Product Development, Singapore University of Technology and Design, Singapore 487372, Singapore.

Department of Electrical Engineering and Computer Science, Massachusetts Institute of Technology, Cambridge, MA 02139, USA and Singapore-MIT Alliance for Research and Technology (SMART) Centre, Singapore 138602, Singapore and Department of Biological Engineering, Massachusetts Institute of Technology, Cambridge, MA 02139, USA.

出版信息

Lab Chip. 2016 Dec 20;17(1):91-103. doi: 10.1039/c6lc01142j.

DOI:10.1039/c6lc01142j
PMID:27883136
Abstract

Despite increasing demand in the manipulation of nanoscale objects for next generation biological and industrial processes, there is a lack of methods for reliable separation, concentration and purification of nanoscale objects. Acoustic methods have proven their utility in contactless manipulation of microscale objects mainly relying on the acoustic radiation effect, though the influence of acoustic streaming has typically prevented manipulation at smaller length scales. In this work, however, we explicitly take advantage of the strong acoustic streaming in the vicinity of a highly focused, high frequency surface acoustic wave (SAW) beam emanating from a series of focused 6 μm substrate wavelength interdigital transducers patterned on a piezoelectric lithium niobate substrate and actuated with a 633 MHz sinusoidal signal. This streaming field serves to focus fluid streamlines such that incoming particles interact with the acoustic field similarly regardless of their initial starting positions, and results in particle displacements that would not be possible with a travelling acoustic wave force alone. This streaming-induced manipulation of nanoscale particles is maximized with the formation of micro-vortices that extend the width of the microfluidic channel even with the imposition of a lateral flow, occurring when the streaming-induced flow velocities are an order of magnitude larger than the lateral one. We make use of this acoustic streaming to demonstrate the continuous and differential focusing of 100 nm, 300 nm and 500 nm particles.

摘要

尽管在下一代生物和工业过程中对操纵纳米级物体的需求不断增加,但缺乏可靠的分离、浓缩和纯化纳米级物体的方法。声方法已经证明了它们在非接触式微尺度物体操纵中的实用性,主要依赖于声辐射效应,尽管声流的影响通常阻止了更小长度尺度的操纵。然而,在这项工作中,我们明确地利用了从一系列聚焦在压电铌酸锂基板上的、具有 6μm 基波波长的叉指换能器上发出的、高度聚焦的高频表面声波(SAW)束附近的强烈声流,该束发出的信号频率为 633MHz 的正弦波。该流场用于聚焦流体流线,使得进入的颗粒无论其初始起始位置如何,都能以相似的方式与声场相互作用,从而导致仅靠行波力不可能实现的颗粒位移。当流场引起的流速比横向流速大一个数量级时,微涡的形成使微通道的宽度甚至在施加横向流的情况下也会扩展,从而最大限度地增强了纳米级颗粒的这种声流诱导操纵。我们利用这种声流来连续和差分聚焦 100nm、300nm 和 500nm 颗粒。

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