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General Concept of High-Performance Amperometric Detector for Microfluidic (Bio)Analytical Chips

机译:高性能(生物)分析芯片高性能电流检测器的一般概念

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In this work, we established theoretically that amperometric detector arrays consisting of a series of parallel band microelectrodes placed on the wall of a microchannel may offer excellent analytical detection performances when implemented onto microfluidic (bio)analytical devices after the separative stages. In combination with the concentration imprinting strategies reported in a previous work, these exceptional performances may be extended to nonelectroactive or poorly diffusing analytes. Using an array of electrodes instead of a large single band allows the whole core of the channel to be probed though keeping an excellent time resolution. Thus, analytes with close retention times may be characterized individually with a resolution which eventually outpaces that of spectroscopic detections. Such important advantages may be obtained only through a complete understanding of the complex coupling between diffusional and convective transport of molecules in microfluidic solutions near an electrochemical detector. As a consequence, the conditions underlying the theoretical data presented in this work have been selected after optimizing procedures rooted on previous theoretical analyses. They will be fully disclosed in a series of further works that will also establish the experimental performances of such amperometric detectors and validate the present concept.
机译:在这项工作中,我们从理论上确定了安培检测器阵列,该安培检测器阵列由放置在微通道壁上的一系列平行带微电极组成,当在分离阶段之后实施到微流体(生物)分析设备上时,可以提供出色的分析检测性能。结合先前工作中报道的浓度压印策略,这些出色的性能可能会扩展到非电活性或扩散不良的分析物。使用电极阵列而不是较大的单个频带,可以在保持出色的时间分辨率的同时探测整个通道的核心。因此,具有接近保留时间的分析物可以用最终超过光谱检测的分辨率单独表征。仅通过全面了解电化学检测器附近微流溶液中分子的扩散与对流传输之间的复杂耦合,才能获得如此重要的优势。因此,在优化基于先前理论分析的程序之后,已经选择了本工作中提出的理论数据的基础条件。它们将在一系列进一步的工作中完全公开,这些工作还将建立此类安培检测器的实验性能并验证本概念。

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