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A tunable, microfluidic filter for clog-free concentration and separation of complex algal cells

机译:一种可调谐的微流体过滤器,用于无堵塞浓缩和分离复杂藻类细胞

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摘要

An inherent problem with microfluidic filters is the tendency to clog, especially when applied to cells due to their geometrical complexity, deformability, and tendency to adhere to surfaces. In this work, we handle live algal cells of high complexity without signs of clogging, achieved by exploiting hydrodynamic interactions around trilobite-shaped filtration units. To characterize the influence of cell complexity on the separation and concentration mechanisms, we compare the hydrodynamic interactions to those of synthetic, rigid microparticles. We discover that simple rolling along the filter structures, which prevents clogging for particles, cannot be applied to cells. Instead, we find that inertial effects must be employed to minimize the filter interactions and that this modification leads to only a minor reduction in device performance.
机译:微流体过滤器的固有问题是堵塞的趋势,特别是当应用于细胞时,由于其几何复杂性,可变形性和粘附在表面上的趋势,特别容易发生堵塞。在这项工作中,我们处理高复杂度的活藻细胞而没有堵塞的迹象,这是通过利用围绕三叶虫形过滤单元的水动力相互作用而实现的。为了表征细胞复杂性对分离和浓缩机制的影响,我们将流体动力学相互作用与合成的刚性微粒进行了比较。我们发现,沿着过滤器结构进行的简单滚动(防止粒子阻塞)无法应用于细胞。取而代之的是,我们发现必须采用惯性效应来最小化滤波器的相互作用,并且这种修改只会导致设备性能的轻微降低。

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  • 来源
    《Microfluidics and nanofluidics》 |2019年第4期|56.1-56.13|共13页
  • 作者单位

    Stanford Univ, Dept Chem Engn, 443 Via Ortega, Stanford, CA 94305 USA|Trilobite Microsyst AS, Torridalsveien 21A, N-4630 Kristiansand, Norway;

    Univ Oslo UiO, Dept Biosci, Sect Aquat Biol & Toxicol, POB 1066 Blindern, N-0316 Oslo, Norway;

    Univ Oslo UiO, Dept Math, POB 1053 Blindern, N-0316 Oslo, Norway;

    SINTEF Digital, Dept Microsyst & Nanotechnol MiNaLab, POB 124, N-0314 Oslo, Norway;

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