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Continuous separation of microparticles in a microfluidic channel via the elasto-inertial effect of non-Newtonian fluid

机译:通过非牛顿流体的弹惯性作用在微流体通道中连续分离微粒

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摘要

Pure separation and sorting of microparticles from complex fluids are essential for biochemical analyses and clinical diagnostics. However, conventional techniques require highly complex and expensive labeling processes for high purity separation. In this study, we present a simple and label-free method for separating microparticles with high purity using the elasto-inertial characteristic of a non-Newtonian fluid in microchannel flow. At the inlet, particle-containing sample flow was pushed toward the side walls by introducing sheath fluid from the center inlet. Particles of 1 μm and 5 μm in diameter, which were suspended in viscoelastic fluid, were successfully separated in the outlet channels: larger particles were notably focused on the centerline of the channel at the outlet, while smaller particles continued flowing along the side walls with minimal lateral migration towards the centerline. The same technique was further applied to separate platelets from diluted whole blood. Through cytometric analysis, we obtained a purity of collected platelets of close to 99.9%. Conclusively, our microparticle separation technique using elasto-inertial forces in non-Newtonian fluid is an effective method for separating and collecting microparticles on the basis of size differences with high purity.
机译:从复杂的流体中纯净地分离和分类微粒对于生化分析和临床诊断至关重要。然而,常规技术需要高度复杂且昂贵的标记过程以用于高纯度分离。在这项研究中,我们提出了一种使用非牛顿流体在微通道流中的弹惯性特征分离高纯度微粒的简单且无标签的方法。在入口处,通过从中心入口引入鞘液,将含颗粒的样品流推向侧壁。悬浮在粘弹性流体中的直径为1μm和5μm的颗粒在出口通道中成功分离:较大的颗粒特别集中在出口通道的中心线上,而较小的颗粒则继续沿侧壁流动。向中心线的最小横向偏移。进一步将相同的技术应用于从稀释的全血中分离血小板。通过细胞分析,我们获得的血小板纯度接近99.9%。最后,我们的利用非牛顿流体中的弹性惯性力进行微粒分离的技术是一种基于高纯度的大小差异分离和收集微粒的有效方法。

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