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用于实验室自动化应用的高电导率样品的电热流体操控

Electrothermal Fluid Manipulation of High-Conductivity Samples for Laboratory Automation Applications.

作者信息

Sin Mandy L Y, Gau Vincent, Liao Joseph C, Wong Pak Kin

机构信息

Department of Aerospace and Mechanical Engineering, University of Arizona, PO Box 210119, Tucson, AZ 85721 USA.

出版信息

JALA Charlottesv Va. 2010 Dec 31;15(6):426-432. doi: 10.1016/j.jala.2010.05.004.

Abstract

Electrothermal flow is a promising technique in microfluidic manipulation toward laboratory automation applications, such as clinical diagnostics and high throughput drug screening. Despite the potential of electrothermal flow in biomedical applications, relative little is known about electrothermal manipulation of highly conductive samples, such as physiological fluids and buffer solutions. In this study, the characteristics and challenges of electrothermal manipulation of fluid samples with different conductivities were investigated systematically. Electrothermal flow was shown to create fluid motion for samples with a wide range of conductivity when the driving frequency was above 100 kHz. For samples with low conductivities (below 1 S/m), the characteristics of the electrothermal fluid motions were in quantitative agreement with the theory. For samples with high conductivities (above 1 S/m), the fluid motion appeared to deviate from the model as a result of potential electrochemical reactions and other electrothermal effects. These effects should be taken into consideration for electrothermal manipulation of biological samples with high conductivities. This study will provide insights in designing microfluidic devices for electrokinetic manipulation of biological samples toward laboratory automation applications in the future.

摘要

电热流是微流体操控领域中一项很有前景的技术,可用于临床诊断和高通量药物筛选等实验室自动化应用。尽管电热流在生物医学应用中有潜力,但对于高导电性样品(如生理流体和缓冲溶液)的电热操控,人们了解得相对较少。在本研究中,系统地研究了不同电导率流体样品电热操控的特性和挑战。当驱动频率高于100 kHz时,电热流被证明能为具有广泛电导率的样品产生流体运动。对于低电导率(低于1 S/m)的样品,电热流体运动的特性与理论在定量上一致。对于高电导率(高于1 S/m)的样品,由于潜在的电化学反应和其他电热效应,流体运动似乎偏离了模型。在对高电导率生物样品进行电热操控时,应考虑这些效应。本研究将为未来设计用于生物样品电动操控的微流体装置以实现实验室自动化应用提供见解。

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Annu Rev Biomed Eng. 2009;11:203-33. doi: 10.1146/annurev-bioeng-061008-124915.
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