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基于离子选择性光极和离心微流控技术的离子全集成分析系统的开发。

Development of a fully integrated analysis system for ions based on ion-selective optodes and centrifugal microfluidics.

作者信息

Johnson R D, Badr I H, Barrett G, Lai S, Lu Y, Madou M J, Bachas L G

机构信息

Department of Chemistry, University of Kentucky, Lexington 40506-0055, USA.

出版信息

Anal Chem. 2001 Aug 15;73(16):3940-6. doi: 10.1021/ac0102819.

Abstract

A fully integrated, miniaturized analysis system for ions based on a centrifugal microfluidics platform and ion-selective optode membranes is described. The microfluidic architecture is composed of channels, five solution reservoirs, a measuring chamber, and a waste reservoir manufactured onto a disk-shaped substrate of poly(methyl methacrylate). Ion-selective optode membranes, composed of plasticized poly(vinyl chloride) impregnated with an ionophore, a proton chromoionophore, and a lipophilic anionic additive, were cast, with a spin-on device, onto a support layer and then immobilized on the disk. Fluid propulsion is achieved by the centrifugal force that results from spinning the disk, while a system of valves is built onto the disk to control flow. These valves operate based on fluid properties and fluid/substrate interactions and are controlled by the angular frequency of rotation. With this system, we have been able to deliver calibrant solutions, washing buffers, or "test" solutions to the measuring chamber where the optode membrane is located. An analysis system based on a potassium-selective optode has been characterized. Results indicate that optodes immobilized on the platform demonstrate theoretical responses in an absorbance mode of measurement. Samples of unknown concentration can be quantified to within 3% error by fitting the response function for a given optode membrane using an acid (for measuring the signal for a fully protonated chromoionophore), a base (for fully deprotonated chromoionophore), and two standard solutions. Further, the ability to measure ion concentrations by employing one standard solution in conjunction with acid and base and with two standards alone were studied to delineate whether the current architecture could be simplified. Finally, the efficacy of incorporating washing steps into the calibration protocol was investigated.

摘要

描述了一种基于离心微流控平台和离子选择性光极膜的全集成微型离子分析系统。微流控结构由通道、五个溶液储液器、一个测量室和一个废液储液器组成,它们被制造在聚甲基丙烯酸甲酯的盘形基板上。由浸渍有离子载体、质子色离子载体和亲脂性阴离子添加剂的增塑聚氯乙烯组成的离子选择性光极膜,通过旋涂装置浇铸在支撑层上,然后固定在盘上。通过旋转盘产生的离心力实现流体推进,同时在盘上构建一个阀门系统来控制流量。这些阀门基于流体特性和流体/基板相互作用运行,并由旋转角频率控制。利用该系统,我们能够将校准溶液、洗涤缓冲液或“测试”溶液输送到光极膜所在的测量室。对基于钾选择性光极的分析系统进行了表征。结果表明,固定在平台上的光极在吸光度测量模式下表现出理论响应。通过使用酸(用于测量完全质子化的色离子载体的信号)、碱(用于完全去质子化的色离子载体)和两种标准溶液拟合给定光极膜的响应函数,可以将未知浓度的样品定量到3%以内的误差。此外,研究了使用一种标准溶液与酸和碱结合以及单独使用两种标准溶液来测量离子浓度的能力,以确定当前架构是否可以简化。最后,研究了在校准方案中加入洗涤步骤的效果。

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