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Sheath-Flow Microfluidic Approach for Combined Surface Enhanced Raman Scattering and Electrochemical Detection

机译:鞘流微流控技术结合表面增强拉曼散射和电化学检测

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The combination of hydrodynamic focusing with embedded capillaries in a microfluidic device is shown to enable both surface enhanced Raman scattering (SERS) and electrochemical characterization of analytes at nanomolar concentrations in flow. The approach utilizes a versatile polystyrene device that contains an encapsulated microelectrode and fluidic tubing, which is shown to enable straightforward hydrodynamic focusing onto the electrode surface to improve detection. A polydimethyslsiloxane (PDMS) microchannel positioned over both the embedded tubing and SERS active electrode (aligned similar to 200 mu m from each other) generates a sheath flow that confines the analyte molecules eluting from the embedded tubing over the SERS electrode, increasing the interaction between the Riboflavin (vitamin B2) and the SERS active electrode. The microfluidic device was characterized using finite element simulations, amperometry, and Raman experiments. This device shows a SERS and amperometric detection limit near 1 and 100 nM, respectively. This combination of SERS and amperometry in a single device provides an improved method to identify and quantify electroactive analytes over either technique independently.
机译:流体动力学聚焦与微流体装置中嵌入的毛细管的结合显示出能够实现表面增强的拉曼散射(SERS)和纳摩尔浓度的流动分析物的电化学表征。该方法利用了一种通用的聚苯乙烯装置,该装置包含一个封装的微电极和流体管,可以使流体动力学直接聚焦到电极表面,从而提高检测效率。聚二甲基硅氧烷(PDMS)微通道同时位于嵌入式管道和SERS活性电极上(彼此对齐约200微米),产生鞘流,限制了从嵌入式管道洗脱的被分析物分子在SERS电极上的流动,从而增加了相互之间的相互作用核黄素(维生素B2)和SERS活性电极。使用有限元模拟,电流分析法和拉曼实验对微流体装置进行了表征。该设备显示的SERS和安培检测极限分别接近1和100 nM。在单个设备中,SERS和电流分析法的这种组合提供了一种改进的方法,可以通过两种技术独立地识别和定量电活性分析物。

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