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High‐Throughput Inertial Focusing of Micrometer‐ and Sub‐Micrometer‐Sized Particles Separation

机译:微米级和亚微米级颗粒分离的高通量惯性聚焦

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摘要

The ability to study individual bacteria or subcellular organelles using inertial microfluidics is still nascent. This is due, in no small part, to the significant challenges associated with concentrating and separating specific sizes of micrometer and sub‐micrometer bioparticles in a microfluidic format. In this study, using a rigid polymeric microfluidic network with optimized microchannel geometry dimensions, it is demonstrated that 2 µm, and even sub‐micrometer, particles can be continuously and accurately focused to stable equilibrium positions. Suspensions have been processed at flow rates up to 1400 µL min−1 in an ultrashort 4 mm working channel length. A wide range of suspension concentrations—from 0.01 to 1 v/v%—have been systematically investigated, with yields greater than 97%, demonstrating the potential of this technology for large‐scale implementation. Additionally, the ability of this chip to separate micrometer‐ and sub‐micrometer‐sized particles and to focus bioparticles (cyanobacteria) has been demonstrated. This study pushes the microfluidic inertial focusing particle range down to sub‐micrometer length scales, enabling novel routes for investigation of individual microorganisms and subcellular organelles.
机译:利用惯性微流体研究单个细菌或亚细胞器的能力仍处于新生阶段。这在很大程度上是由于与以微流形式浓缩和分离特定尺寸的微米和亚微米生物颗粒有关的重大挑战。在这项研究中,使用具有优化的微通道几何尺寸的刚性聚合物微流体网络,可以证明2 µm甚至亚微米的颗粒可以连续且准确地聚焦到稳定的平衡位置。在超短的4 mm工作通道长度中,悬浮液的处理速度高达1400 µL min -1 。系统地研究了各种悬浮液浓度(0.01至1 v / v%),产率超过97%,证明了该技术在大规模实施中的潜力。此外,该芯片还具有分离微米级和亚微米级颗粒并聚焦生物颗粒(蓝细菌)的能力。这项研究将微流体惯性聚焦颗粒的范围缩小到亚微米长,从而为研究单个微生物和亚细胞器提供了新的途径。

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