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Enhancement of microfluidic particle separation using cross-flow filters withhydrodynamic focusing

机译:使用错流过滤器增强微流体颗粒分离流体动力聚焦

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摘要

A microfluidic chip is proposed to separate microparticles using cross-flow filtration enhanced with hydrodynamic focusing. By exploiting a buffer flow from the side, the microparticles in the sample flow are pushed on one side of the microchannels, lining up to pass through the filters. Meanwhile a larger pressure gradient in the filters is obtained to enhance separation efficiency. Compared with the traditional cross-flow filtration, our proposed mechanism has the buffer flow to create a moving virtual boundary for the sample flow to actively push all the particles to reach the filters for separation. It further allows higher flow rates. The device only requires soft lithograph fabrication to create microchannels and a novel pressurized bonding technique to make high-aspect-ratio filtration structures. A mixture of polystyrene microparticles with 2.7 μm and 10.6 μm diameters are successfully separated. 96.2 ± 2.8% of the large particle are recovered with a purity of 97.9 ± 0.5%, while 97.5 ± 0.4% of the small particle are depleted with a purity of 99.2 ± 0.4% at a sample throughput of 10 μl/min. The experiment is also conducted to show the feasibility of this mechanism to separate biological cells with the sample solutions of spiked PC3 cells in whole blood. By virtue of its high separation efficiency, ourdevice offers a label-free separation technique and potential integration with other components,thereby serving as a promising tool for continuous cell filtration and analysisapplications.
机译:提出了一种微流控芯片,该微流控芯片使用通过流体动力聚焦增强的错流过滤来分离微粒。通过从侧面利用缓冲液流,样品流中的微粒被推入微通道的一侧,并排成一列以通过过滤器。同时,在过滤器中获得更大的压力梯度以提高分离效率。与传统的错流过滤相比,我们提出的机制具有缓冲流,可为样品流创建移动的虚拟边界,以主动推动所有颗粒到达过滤器进行分离。它还允许更高的流速。该设备只需要软光刻机制造就可以创建微通道,而新颖的加压粘合技术就可以制造高纵横比的过滤结构。成功分离出直径为2.7μm和10.6μm的聚苯乙烯微粒的混合物。在10 µl / min的样品通量下,回收了96.2%±2.8%的大颗粒,纯度为97.9%±0.5%,而97.5%±0.4%的小颗粒的纯度为99.2%±0.4%。还进行了实验以表明该机制在全血中与掺入PC3细胞的样品溶液分离生物细胞的可行性。由于其高分离效率,我们的该设备提供了无标签分离技术,并可能与其他组件集成,从而成为连续细胞过滤和分析的有前途的工具应用程序。

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