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采用可移动阀控制纸基微流控装置中的毛细管驱动流体传输。

Controlling Capillary-Driven Fluid Transport in Paper-Based Microfluidic Devices Using a Movable Valve.

机构信息

Key Laboratory of Coastal Environmental Processes and Ecological Remediation, Yantai Institute of Coastal Zone Research, Chinese Academy of Sciences , Yantai 264003, China.

College of Chemistry and Chemical Engineering, Yantai University , Yantai 264005, China.

出版信息

Anal Chem. 2017 Jun 6;89(11):5707-5712. doi: 10.1021/acs.analchem.7b00726. Epub 2017 May 15.

Abstract

This paper describes a novel strategy for fabricating the movable valve on paper-based microfluidic devices to manipulate capillary-driven fluids. The movable valve fabrication is first realized using hollow rivets as the holding center to control the paper channel in different layer movement that results in the channel's connection or disconnection. The relatively simple valve fabrication procedure is robust, versatile, and compatible with microfluidic paper-based analytical devices (μPADs) with differing levels of complexity. It is remarkable that the movable valve can be convenient and free to control fluid without the timing setting, advantages that make it user-friendly for untrained users to carry out the complex multistep operations. For the performance of the movable valve to be verified, several different designs of μPADs were tested and obtained with satisfactory results. In addition, in the proof-of-concept enzyme-linked immunosorbent assay experiments, we demonstrate the use of these valves in μPADs for the successful analysis of samples of carcino-embryonic antigen, showing good sensitivity and reproducibility. We hope this technique will open new avenues for the fabrication of paper-based valves in an easily adoptable and widely available way on μPADs and provide potential point-of-care applications in the future.

摘要

本文提出了一种在基于纸的微流控装置上制造可移动阀的新策略,以操纵基于毛细管的流体。该可移动阀的制造首先通过空心铆钉作为保持中心来实现,以控制不同层中纸通道的运动,从而实现通道的连接或断开。相对简单的阀制造工艺具有鲁棒性、多功能性,并且与具有不同复杂程度的微流控纸基分析装置(μPAD)兼容。值得注意的是,该可移动阀可以方便、自由地控制流体,而无需定时设置,这使其易于操作,即使是非专业用户也可以轻松执行复杂的多步操作。为了验证可移动阀的性能,测试了几种不同设计的 μPAD,结果令人满意。此外,在概念验证酶联免疫吸附试验实验中,我们展示了在 μPAD 中使用这些阀成功分析癌胚抗原样品的情况,显示出良好的灵敏度和重现性。我们希望这项技术将为基于纸的阀在 μPAD 上的制造开辟新途径,使其易于采用和广泛应用,并为未来提供潜在的即时护理应用。

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