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Size-Dependent Inertial Focusing Position Shift and Particle Separations in Triangular Microchannels

机译:三角形微通道中的大小依赖性惯性聚焦位置偏移和颗粒分离

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摘要

A recent study of inertial microfluidics within nonrectangular cross-section channels showed that the inertial focusing positions changes with cross-sectional shapes; therefore, the cross-sectional shape can be a useful control parameter for microfluidic particle manipulations. Here, we conducted detail investigation on unique focusing position shift phenomena, which occurs strongly in channels with the cross-sectional shape of the isosceles right triangle. The top focusing positions shift along the channel walls to the direction away from the apex with increasing Reynolds number and decreasing particle size. A larger particle with its center further away from the side walls experiences shear gradient lift toward the apex, which leads to an opposite result with changes of Reynolds and particle size. The focusing position shift and the subsequent stabilization of corner focusing lead to changes in the number of focusing positions, which enables a novel method for microparticle separations with high efficiency ( 95%) and resolution ( 2 mu m). The separation method based on equilibrium focusing; therefore, the operation is simple and no complex separation optimization is needed. Moreover, the separation threshold can be easily modulated with flow rate adjustment. Rare cell separation from blood cell was successfully demonstrated with spiked MCF-7 cells in blood by achieving the yield of similar to 95% and the throughput of similar to 10(6) cells/min.
机译:最近对非分离截面通道内的惯性微流体的研究表明,惯性聚焦位置与横截面形状变化;因此,横截面形状可以是微流体颗粒操纵的有用控制参数。在这里,我们对独特的聚焦位置换档现象进行了详细的研究,它在具有右三角形的横截面形状的通道中强烈发生。顶部聚焦位置沿沟道壁偏移到远离顶点的方向,随着雷诺数和降低粒度。具有其中心的较大颗粒,其中心远离侧壁经历剪切梯度升升朝向顶点,这导致雷诺和粒度的变化相反的结果。聚焦位置换档和转角聚焦的随后稳定导致聚焦位置的数量变化,这使得微粒分离的新方法具有高效率(& 95%)和分辨率(&lt 2 mu m)。基于均衡聚焦的分离方法;因此,操作简单,不需要复杂的分离优化。此外,可以通过流速调节容易地调节分离阈值。通过实现与95%的产率和类似于10(6)个细胞/分钟的产量,成功地证明了与血液细胞的稀有细胞分离。

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  • 来源
    《Analytical chemistry》 |2018年第3期|共9页
  • 作者单位

    Korea Adv Inst Sci &

    Technol Grad Sch Nanosci &

    Technol Daejeon 34141 South Korea;

    KIMM Dept Nano Mfg Technol Daejeon 34103 South Korea;

    KIMM Dept Nano Mfg Technol Daejeon 34103 South Korea;

    KIMM Dept Nano Mfg Technol Daejeon 34103 South Korea;

    Korea Adv Inst Sci &

    Technol Grad Sch Nanosci &

    Technol Daejeon 34141 South Korea;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 分析化学;
  • 关键词

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