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Development of a surface acoustic wave micromixer for enhanced chemiluminescence microanalysis: application to pesticides

机译:用于增强化学发光微量分析的表面声波微混合器的开发:在农药上的应用

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摘要

This study introduces a new concept in active microfluidics as it employs surface acoustic waves (SAW) to induce active microfluidic mixing in a microanalytical flow system. A SAW driven microfluidic platform integrated with a flow injection analysis (FIA) system is presented. The platform is equipped with a micromixer and a sensitive photodetector for the rapid on-line quantification of chemiluminescent species. The microfabricated mixer consists of a 100 µL chamber cast in polydimethylsiloxane (PDMS) with an embedded single interdigitated SAW transducer. The reagent and sample are injected into the chamber and actively mixed using unidirectional SAW streaming. Several experimental configurations were optimised by varying the power and duration of the SAW input, fluid flow rate and the orientation of the micromixer inlets relative to the SAW aperture. The mixing efficiency of the SAW Micromixer was quantified as a function of the spatial shifting of a fluorescent tracer in the SAW Micromixer and later as a function of the chemiluminescent output of a chemiluminescent reaction under different conditions using image analysis. The effect of SAW on the microanalytical sensitivity was assessed using the chemiluminescent species tris(2,2′-bipyridyl)dichlororuthenium(II) hexahydrate. The microanalytical sensitivity was increased by two orders of magnitude with the use of SAW active mixing in comparison with conventional FIA systems, resulting in a theoretical detection limit of approximately 0.02 µgL-1 for the chemiluminogenic test substance L-proline. Application to selected chemiluminogenic pesticides resulted in double the sensitivity of conventional FIA systems, with a theoretical detection limit of approximately 0.96 µgL-1 for the pesticide glyphosate using tris(2,2′-bipyridyl)dichlororuthenium(II) hexahydrate as the chemiluminescent reagent.
机译:这项研究引入了一种主动微流体学的新概念,因为它利用表面声波(SAW)在微分析流系统中诱导了主动微流体混合。提出了与流动注射分析(FIA)系统集成的SAW驱动的微流体平台。该平台配备了微型混合器和灵敏的光电探测器,可对化学发光物质进行快速在线定量。微型混合器由一个100 µL的室组成,该室由聚二甲基硅氧烷(PDMS)铸成,并带有嵌入式单指形SAW传感器。试剂和样品被注入腔室并使用单向SAW流进行主动混合。通过改变声表面波输入的功率和持续时间,流体流速以及微型混合器入口相对于声表面波孔的方向,优化了几种实验配置。 SAW微型混合器的混合效率是根据SAW微型混合器中荧光示踪剂的空间移动来量化的,后来又根据图像分析在不同条件下根据化学发光反应的化学发光输出来量化。使用化学发光物质三(2,2′-联吡啶基)二氯钌(II)六水合物评估了SAW对微分析灵敏度的影响。与常规的FIA系统相比,通过使用SAW主动混合,微分析灵敏度增加了两个数量级,导致化学发光测试物质L-脯氨酸的理论检测极限为约0.02μgL-1。对选定的化学发光农药的应用导致传统FIA系统的灵敏度翻了一番,使用六水合三(2,2′-联吡啶基)二氯钌(II)作为化学发光剂的草甘膦农药的理论检测极限约为0.96μgL-1试剂。

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    Gracioso Martins A;

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