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用于微芯片中电化学检测的全集成三维电极:制备、表征及应用

Fully integrated three-dimensional electrodes for electrochemical detection in microchips: fabrication, characterization, and applications.

作者信息

Pai Rekha S, Walsh Kevin M, Crain Mark M, Roussel Thomas J, Jackson Douglas J, Baldwin Richard P, Keynton Robert S, Naber John F

机构信息

Department of Electrical and Computer Engineering, University of Louisville, Louisville, Kentucky 40292, USA.

出版信息

Anal Chem. 2009 Jun 15;81(12):4762-9. doi: 10.1021/ac9002529.

Abstract

A scalable and rather inexpensive solution to producing microanalytical systems with "on-chip" three-dimensional (3D) microelectrodes is presented in this study, along with applicability to practical electrochemical (EC) detection scenarios such as preconcentration and interferant removal. This technique to create high-aspect-ratio (as much as 4:1) gold microstructures in constrained areas involved the modification of stud bump geometry with microfabricated silicon molds via an optimized combination of temperature, pressure, and time. The microelectrodes that resulted consisted of an array of square pillars approximately 18 microm tall and 20 microm wide on each side, placed at the end of a microfabricated electrophoresis channel. This technique increased the active surface area of the microelectrodes by as much as a factor of 50, while mass transfer and, consequently, preconcentration collection efficiencies were increased to approximately 100%, compared to approximately 30% efficiency for planar nonmodified microelectrodes (samples that were used included the neurotransmitters dopamine and catechol). The 3D microelectrodes were used both in a stand-alone configuration, for direct EC detection of model catecholamine analytes, and, more interestingly, in dual electrode configurations for EC sample processing prior to detection downstream at a second planar electrode. In particular, the 3D electrodes were shown to be capable of performing coulometry or complete (100%) redox conversion of analyte species over a wide range of concentrations, from 4.3 microM to 4.4 mM, in either plug-flow or continuous-flow formats.

摘要

本研究提出了一种可扩展且成本相对较低的解决方案,用于生产具有“芯片上”三维(3D)微电极的微分析系统,并介绍了其在诸如预浓缩和干扰物去除等实际电化学(EC)检测场景中的适用性。这种在受限区域创建高纵横比(高达4:1)金微结构的技术,涉及通过温度、压力和时间的优化组合,用微加工的硅模具对柱形凸块的几何形状进行修改。由此产生的微电极由一系列方形柱组成,每根柱高约18微米,每侧宽约20微米,放置在微加工电泳通道的末端。与平面未修饰微电极(使用的样品包括神经递质多巴胺和儿茶酚)约30%的效率相比,该技术使微电极的有效表面积增加了多达50倍,同时传质以及预浓缩收集效率提高到了约100%。3D微电极既可以单独配置用于直接EC检测模型儿茶酚胺分析物,更有趣的是,还可以用于双电极配置,在下游第二个平面电极进行检测之前对EC样品进行处理。特别是,3D电极被证明能够在4.3 microM至4.4 mM的广泛浓度范围内,以塞流或连续流形式对分析物进行库仑分析或完全(即100%)氧化还原转化。

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