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基于毛细和真空驱动流的坚固、便携且无回流的微混合装置。

A robust, portable and backflow-free micromixing device based on both capillary- and vacuum-driven flows.

机构信息

SMALL (Sensors and MicroActuators Learning Lab), Department of Electrical Engineering, University at Buffalo, The State University of New York (SUNY at Buffalo), Buffalo, New York 14260, USA.

出版信息

Lab Chip. 2018 Jan 16;18(2):276-284. doi: 10.1039/c7lc01077j.

DOI:10.1039/c7lc01077j
PMID:29199733
Abstract

In capillary- or vacuum-driven microfluidics, surge backflow events are common when merging or pumping two similar or dissimilar liquids together if a pressure difference exists between them. In this work, a robust, portable micromixing device that is insensitive to backflow was designed, fabricated and characterised. A capillary-driven pressure balancing bypass connected between two inlet ports diminished the initial pressure difference caused by capillarity and gravity present in each liquid at the two inlet ports. Then, using manual syringe-assisted vacuum-driven pumping that operated based on the high gas permeability of polydimethylsiloxane, the two pre-balanced liquid streams could synchronously enter a dead-end micromixing channel without any backflow. To test the performance of this device, we first used it to mix two aqueous solutions of different coloured dyes. We varied the initial volume difference between the solutions to study the effect of gravity-induced pressure difference on mixing. Next, as a proof-of-concept application, ABO/Rh blood groups were successfully determined through detection of blood antigen-antibody agglutination. The filling time of agglutinated samples, driven by the simple syringe-assisted pumping, in the dead-end mixing channel was consistently 10% longer than that of blood samples without the agglutination reaction. Thus, the proposed device shows great potential for use in a wide variety of blood typing assays, agglutination-based assays and point-of-care or lab-on-a-chip testing applications.

摘要

在毛细管或真空驱动的微流控中,如果两种相似或不相似的液体之间存在压力差,那么在合并或泵送它们时,通常会出现回流冲击事件。在这项工作中,设计、制造和表征了一种对回流不敏感的稳健、便携式微混合装置。在两个入口之间连接一个毛细管驱动的压力平衡旁路,可以减小由于毛细作用和每个液体在两个入口处的重力引起的初始压力差。然后,使用基于聚二甲基硅氧烷高透气性的手动注射器辅助真空驱动泵送,两个预平衡的液体流可以同步进入无回流的死端微混合通道。为了测试该装置的性能,我们首先使用它来混合两种不同颜色染料的水溶液。我们改变了溶液之间的初始体积差异,以研究重力引起的压力差对混合的影响。接下来,作为概念验证应用,通过检测血液抗原抗体的凝集,成功地确定了 ABO/Rh 血型。在死端混合通道中,由简单的注射器辅助泵送驱动的凝集样品的填充时间比没有凝集反应的血液样品的填充时间长 10%。因此,所提出的装置在各种血型鉴定分析、基于凝集的分析以及即时检测或芯片实验室检测应用中具有很大的应用潜力。

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