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Enhancement of acoustic streaming induced flow on a focused surface acoustic wave device: Implications for biosensing and microfluidics

机译:聚焦表面声波装置上声流感应流的增强:对生物传感和微流控的影响

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摘要

Fluid motion induced on the surface of 100 MHz focused surface acoustic wave (F-SAW) devices with concentric interdigital transducers (IDTs) based on Y-cut Z-propagating LiNbO_3 substrate was investigated using three-dimensional bidirectionally coupled finite element fluid-structure interaction models. Acoustic streaming velocity fields and induced forces for the F-SAW device are compared with those for a SAW device with uniform IDTs (conventional SAW). Both, qualitative and quantitative differences in the simulation derived functional parameters, such as device displacements amplitudes, fluid velocity, and streaming forces, are observed between the F-SAW and conventional SAW device. While the conventional SAW shows maximum fluid recirculation near input IDTs, the region of maximum recirculation is concentrated near the focal point of the F-SAW device. Our simulation results also indicate acoustic energy focusing by the F-SAW device leading to maximized device surface displacements, fluid velocity, and streaming forces near the focal point located in the center of the delay path, in contrast to the conventional SAW exhibiting maximized values of these parameters near the input IDTs. Significant enhancement in acoustic streaming is observed in the F-SAW device when compared to the conventional ones; the increase in streaming velocities was computed to be 352% and 216% for tangential velocities in propagation and transverse directions, respectively, and 353% for the normal velocity. Consequently, the induced streaming force for F-SAW is 480% larger than that for conventional SAW. In biosensing applications, this allows for the removal of smaller submicron sized particles by F-SAW which are otherwise difficult to remove using the conventional SAW. The F-SAW presents an order of magnitude reduction in the smallest removable particle size compared to the conventional device. Our results indicate that the acoustic energy focusing and streaming enhancement brought about by the F-SAW device manifests itself as enhanced biofouling removal efficiency of F-SAW throughout the device delay path compared to the conventional device, thereby providing enhanced device sensitivity, selectivity, and reusability. Furthermore, contrary to the conventional SAW in which the smallest particle is removable near the input IDTs, the F-SAW device removes the smallest particle near the device focal point. The results of this work are shown to have significant implications in typical biosensing and microfluidic applications. In a broader context, the results of the present study demonstrate a technique of enhancing streaming induced flows, which is of great importance to contemporary problems involving microfluidic and sensing applications of piezoelectric devices.
机译:利用三维双向耦合有限元流固耦合研究了Y型切向Z传播LiNbO_3基片上带有同心叉指换能器(IDT)的100 MHz聚焦表面声波(F-SAW)设备表面上的流体运动。楷模。将F-SAW设备的声流速度场和感应力与具有均匀IDT(常规SAW)的SAW设备的声流速度场和感应力进行了比较。在F-SAW和常规SAW设备之间,观察到了仿真得出的功能参数的定性和定量差异,例如设备位移幅度,流体速度和流动力。尽管常规的SAW在输入IDT附近显示出最大的流体再循环,但是最大再循环的区域却集中在F-SAW设备的焦点附近。我们的仿真结果还表明,与传统SAW表现出最大的声压值相比,F-SAW器件对声能的聚焦导致了最大的器件表面位移,流体速度和靠近延迟路径中心的焦点附近的流动力。这些参数靠近输入IDT。与传统设备相比,F-SAW设备中观察到了声音流的显着增强。计算得出,沿传播方向和横向切向速度,流速度的增加分别为352%和216%,对于法向速度,则为353%。因此,F-SAW的感应流力比常规SAW的感应流力大480%。在生物传感应用中,这允许通过F-SAW去除较小的亚微米尺寸的颗粒,否则使用传统的SAW很难去除这些颗粒。与传统设备相比,F-SAW的最小可去除颗粒尺寸降低了一个数量级。我们的结果表明,与传统设备相比,F-SAW设备带来的声能聚焦和流增强增强表现为F-SAW在整个设备延迟路径中生物污垢去除效率的提高,从而提高了设备​​的灵敏度,选择性和稳定性。可重用性。此外,与传统的SAW(其中最小的粒子可在输入IDT附近移除)相反,F-SAW设备去除了设备焦点附近的最小粒子。结果表明,这项工作的结果对典型的生物传感和微流体应用具有重要意义。在更广泛的背景下,本研究的结果证明了一种增强流感应流的技术,这对于涉及压电器件的微流体和传感应用的当代问题非常重要。

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  • 来源
    《Journal of Applied Physics》 |2010年第2期|024503.1-024503.9|共9页
  • 作者单位

    Department of Chemical and Biomedical Engineering, Sensors Research Laboratory, University of South Florida, Tampa, Florida 33620, USA;

    Department of Chemical and Biomedical Engineering, Sensors Research Laboratory, University of South Florida, Tampa, Florida 33620, USA School of Engineering and Applied Sciences, Harvard University, Cambridge, MA 02138;

    Department of Chemical and Biomedical Engineering, Sensors Research Laboratory, University of South Florida, Tampa, Florida 33620, USA;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
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