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对磁性驱动液滴在各种(超)疏水表面上的运动学及其在自动多液滴平台中的应用进行的研究。

An investigation into the kinematics of magnetically driven droplets on various (super)hydrophobic surfaces and their application to an automated multi-droplet platform.

作者信息

Agrawal Prashant, Bachus Kyle J, Carriere Gabrielle, Grouse Phoenix, Oleschuk Richard D

机构信息

Department of Chemistry, Queen's University, 90 Bader Lane, Kingston, ON, K7L 3N6, Canada.

出版信息

Anal Bioanal Chem. 2019 Aug;411(21):5393-5403. doi: 10.1007/s00216-018-1378-y. Epub 2018 Oct 5.

DOI:10.1007/s00216-018-1378-y
PMID:30291386
Abstract

Magnetic actuation on digital microfluidic (DMF) platforms may provide a low-cost, less cumbersome alternative for droplet manipulation in comparison to other techniques such as electrowetting-on-dielectric. Precise control of droplets in magnetically driven DMF platforms is achieved using a low-friction surface, magnetically susceptible material/droplet(s), and an applied magnetic field. Superhydrophobic (SH) surfaces offer limited friction for aqueous media as defined by their high water contact angles (WCA) (>150°) and low sliding angles (<10°). The low surface friction of such coatings and materials significantly reduces the force required for droplet transport. Here, we present a study that examines several actuation parameters including the effects of particle and particle-free actuation mechanisms, porous and non-porous SH materials, surface chemistry, droplet speed/acceleration, and the presence of surface energy traps (SETs) on droplet kinematics. Automated actuation was performed using an XY linear stepper gantry, which enabled sequential droplet actuation, mixing, and undocking operations to be performed in series. The results of this study are applied to a quantitative fluorescence-based DNA assay in under 2 min. Graphical abstract ᅟ.

摘要

与诸如介电电泳等其他技术相比,数字微流控(DMF)平台上的磁驱动可为液滴操控提供一种低成本、更简便的替代方法。在磁驱动的DMF平台中,通过使用低摩擦表面、顺磁材料/液滴以及外加磁场来实现对液滴的精确控制。超疏水(SH)表面因其高水接触角(WCA)(>150°)和低滑动角(<10°),对水性介质提供有限摩擦力。此类涂层和材料的低表面摩擦力显著降低了液滴传输所需的力。在此,我们展示了一项研究,该研究考察了几个驱动参数,包括有颗粒和无颗粒驱动机制、多孔和无孔SH材料、表面化学、液滴速度/加速度以及表面能阱(SETs)的存在对液滴运动学的影响。使用XY线性步进龙门架进行自动驱动,这使得能够依次进行液滴驱动、混合以及脱离操作。本研究结果应用于在不到2分钟内基于荧光的DNA定量分析。图形摘要ᅟ 。

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