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Polydimethylsiloxane-LiNbO3 surface acoustic wave micropump devices for fluid control into microchannels

机译:聚二甲基硅氧烷-LiNbO3表面声波微泵装置,用于将流体控制到微通道中

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This paper presents prototypical microfluidic devices made by hybrid microchannels based on piezoelectric LiNbO3 and polydimethylsiloxane.This system enables withdrawing micropumping by acoustic radiation in microchannels.The withdrawing configuration,integrated on chip,is here quantitatively investigated for the first time,and found to be related to the formation and coalescence dynamics of droplets within the microchannel,primed by surface acoustic waves.The growth dynamics of droplets is governed by the water diffusion on LiNbO3,determining the advancement of the fluid front.Observed velocities are up to 2.6 mm s~(-1) for 30 dBm signals applied to the interdigital transducer,corresponding to tens of nl s~(-1),and the micropumping dynamics is described by a model taking into account an acoustic power exponentially decaying upon travelling along the microchannel.This straighforward and flexible micropumping approach is particularly promising for the withdrawing of liquids in lab-on-chip devices performing cycling transport of fluids and biochemical reactions.
机译:本文介绍了基于压电LiNbO3和聚二甲基硅氧烷的混合微通道制造的典型微流控设备。该系统能够通过微通道中的声辐射提取微泵。在芯片中集成的提取构型在此进行了首次定量研究,并发现了相关性在表面声波的作用下,微通道内液滴的形成和聚结动力学受到影响。液滴的生长动力学受LiNbO3上水扩散的影响,决定了流体前沿的发展。观测速度高达2.6 mm s〜( -1)对于施加到叉指式换能器的30 dBm信号,对应于数十nl s〜(-1),并且通过考虑了沿微通道传播时声功率呈指数衰减的模型来描述微泵浦动力学。灵活的微泵方法特别适合在实验室进行液体抽取ip设备执行流体的循环传输和生化反应。

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