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双轴旋转式无线充电离心微流控平台的流控策略综合研究。

Comprehensive Study of the Flow Control Strategy in a Wirelessly Charged Centrifugal Microfluidic Platform with Two Rotation Axes.

机构信息

Department of Biomedical Engineering, Collaborative Innovation Center for Diagnosis and Treatment of Infectious Diseases, Tsinghua University School of Medicine , Beijing 100084, China.

National Engineering Research Center for Beijing Biochip Technology , Beijing 102206, China.

出版信息

Anal Chem. 2017 Sep 5;89(17):9315-9321. doi: 10.1021/acs.analchem.7b02080. Epub 2017 Aug 14.

Abstract

Centrifugal microfluidics has been widely applied in the sample-in-answer-out systems for the analyses of nucleic acids, proteins, and small molecules. However, the inherent characteristic of unidirectional fluid propulsion limits the flexibility of these fluidic chips. Providing an extra degree of freedom to allow the unconstrained and reversible pumping of liquid is an effective strategy to address this limitation. In this study, a wirelessly charged centrifugal microfluidic platform with two rotation axes has been constructed and the flow control strategy in such platform with two degrees of freedom was comprehensively studied for the first time. Inductively coupled coils are installed on the platform to achieve wireless power transfer to the spinning stage. A micro servo motor is mounted on both sides of the stage to alter the orientation of the device around a secondary rotation axis on demand during stage rotation. The basic liquid operations on this platform, including directional transport of liquid, valving, metering, and mixing, are comprehensively studied and realized. Finally, a chip for the simultaneous determination of hexavalent chromium [Cr(VI)] and methanal in water samples is designed and tested based on the strategy presented in this paper, demonstrating the potential use of this platform for on-site environmental monitoring, food safety testing, and other life science applications.

摘要

离心微流控技术已广泛应用于样品进、结果出的核酸、蛋白质和小分子分析系统中。然而,这种微流控芯片固有的单向流体推进特性限制了其灵活性。提供额外的自由度,实现液体的自由和可逆泵送,是解决这一限制的有效策略。本研究构建了一种具有两个旋转轴的无线充电离心微流控平台,并首次全面研究了该平台在两个自由度下的流控策略。感应耦合线圈安装在平台上,以实现对旋转台的无线电力传输。微伺服电机安装在旋转台的两侧,以便在旋转台旋转过程中根据需要改变设备围绕第二旋转轴的方向。该平台的基本液体操作,包括液体的定向输送、阀控、计量和混合,都得到了全面的研究和实现。最后,基于本文提出的策略,设计并测试了用于同时测定水样中六价铬[Cr(VI)]和甲醛的芯片,展示了该平台在现场环境监测、食品安全检测和其他生命科学应用中的潜在用途。

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