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通过在螺旋微流控通道中集成梯形微腔增强微粒和细胞的惯性聚焦

Enhanced inertial focusing of microparticles and cells by integrating trapezoidal microchambers in spiral microfluidic channels.

作者信息

Al-Halhouli Ala'aldeen, Albagdady Ahmed, Al-Faqheri Wisam, Kottmeier Jonathan, Meinen Sven, Frey Lasse Jannis, Krull Rainer, Dietzel Andreas

机构信息

NanoLab, School of Applied Technical Sciences, German Jordanian University Amman Jordan

MicroNano Mechatronic Lab, Mechanical, Automotive & Materials Engineering, University of Windsor Windsor ON Canada.

出版信息

RSC Adv. 2019 Jun 18;9(33):19197-19204. doi: 10.1039/c9ra03587g. eCollection 2019 Jun 14.

Abstract

In this work, manipulating width and equilibrium position of fluorescent microparticles in spiral microchannel fractionation devices by embedding microchambers along the last turn of a spiral is reported. Microchambers with different shapes and sizes were tested at Reynolds numbers between 15.7 and 156.6 (100-1000 μL min) to observe focusing of 2, 5 and 10 μm fluorescent microparticles. This paper also discusses the fabrication process of the microfluidic chips with femtosecond laser ablation on glass wafers, as well as a particle imaging velocimetry (μPIV) study of microparticle trajectories inside a microchamber. It could be demonstrated with an improved final design with inclined microchamber side walls, that the 2 μm particle equilibrium position is shifted towards the inner wall by ∼27 μm and the focusing line's width is reduced by ∼18 μm. Finally, yeast cells were tested in the final chip and a cell focusing efficiency of 99.1% is achieved.

摘要

在这项工作中,报告了通过沿螺旋的最后一圈嵌入微腔来操纵螺旋微通道分级装置中荧光微粒的宽度和平衡位置。在雷诺数介于15.7和156.6之间(100 - 1000 μL/min)的条件下,对具有不同形状和尺寸的微腔进行了测试,以观察2、5和10 μm荧光微粒的聚焦情况。本文还讨论了在玻璃晶圆上采用飞秒激光烧蚀法制造微流控芯片的过程,以及对微腔内微粒轨迹的粒子成像测速(μPIV)研究。通过改进后的最终设计(带有倾斜的微腔侧壁)可以证明,2 μm微粒的平衡位置向内壁偏移了约27 μm,聚焦线的宽度减小了约18 μm。最后,在最终芯片中对酵母细胞进行了测试,实现了99.1%的细胞聚焦效率。

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