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Surface-enhanced Raman spectroscopy of chloroalkanes in microfluidic chips

机译:微流控芯片中氯代烷烃的表面增强拉曼光谱

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Optofluidics, a research discipline combining optics and microfluidics, currently aspires to revolutionize the analysis of biological and chemical samples, e.g. for medicine, pharmacology, or molecular biology. In order to detect low concentrations of analytes in water, we have developed an optofluidic device containing a nanostructured substrate for surface enhanced Raman spectroscopy (SERS). The geometry' of the gold surface allows localized plasmon oscillations to give rise to the SERS effect, in which the Raman spectral lines are intensified by the interaction of the plasmonic field with the electrons in the molecular bonds. The SERS substrate was enclosed in a microfluidic system, which allowed transport and precise mixing of the analyzed fluids, while preventing contamination or abrasion of the highly sensitive substrate. To illustrate its practical use, we employed the device for quantitative detection of persistent environmental pollutant 1,2,3-trichloropropane in water in submillimolar concentrations. The developed sensor allows fast and simple quantification of halogenated compounds and it will contribute towards the environmental monitoring and enzymology experiments with engineered haloalkane dehalogenase enzymes.
机译:光流体学是一门结合了光学和微流体学的研究学科,目前希望彻底改变生物和化学样品的分析方法,例如用于医学,药理学或分子生物学。为了检测水中的低浓度分析物,我们开发了一种光流体设备,其中包含用于表面增强拉曼光谱(SERS)的纳米结构基质。金表面的几何形状允许局部等离激元振荡产生SERS效应,其中拉曼光谱线通过等离激元场与分子键中电子的相互作用而增强。将SERS基质封装在微流体系统中,该系统允许运输和精确混合被分析的流体,同时防止污染或磨损高度敏感的基质。为了说明其实际用途,我们使用了该设备对亚毫摩尔浓度的水中的持久性环境污染物1,2,3-三氯丙烷进行定量检测。开发的传感器可以快速,简单地定量卤代化合物,并将有助于工程卤代烷脱卤酶对环境的监测和酶学实验。

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