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A Surface-Enhanced Raman Scattering Sensor Integrated with Battery-Controlled Fluidic Device for Capture and Detection of Trace Small Molecules

机译:与电池控制的流体装置集成的表面增强拉曼散射传感器用于捕获和检测痕量小分子

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摘要

For surface-enhanced Raman scattering (SERS) sensors, one of the important issues is the development of substrates not only with high SERS-activity but also with strong ability to capture analytes. However, it is difficult to achieve the two goals simultaneously especially when detecting small molecules. Herein a compact battery-controlled nanostructure-assembled SERS system has been demonstrated for capture and detection of trace small molecule pollutants in water. In this SERS fluidic system, an electrical heating constantan wire covered with the vertically aligned ZnO nanotapers decorated with Ag-nanoparticles is inserted into a glass capillary. A mixture of thermo-responsive microgels, Au-nanorods colloids and analyte solution is then filled into the remnant space of the capillary. When the system is heated by switching on the battery, the thermo-responsive microgels shrink, which immobilizes the analyte and drives the Au-nanorod close to each other and close to the Ag-ZnO nanotapers. This process has also created high-density “hot spots” due to multi-type plasmonic couplings in three-dimensional space, amplifying the SERS signal. This integrated device has been successfully used to measure methyl parathion in lake water, showing a great potential in detection of aquatic pollutants.
机译:对于表面增强拉曼散射(SERS)传感器,重要的问题之一是开发不仅具有高SERS活性而且具有很强的捕获分析物能力的基质。但是,特别是在检测小分子时,很难同时实现两个目标。在此,已经证明了一种紧凑的电池控制的纳米结构组装SERS系统,用于捕获和检测水中的痕量小分子污染物。在此SERS流体系统中,将覆盖有用银纳米粒子装饰的垂直排列的ZnO纳米锥覆盖的电加热常数电线插入玻璃毛细管中。然后将热响应性微凝胶,金纳米胶体和分析物溶液的混合物填充到毛细管的残留空间中。当通过打开电池来加热系统时,热响应性微凝胶收缩,从而固定分析物并驱动Au-nanorod彼此靠近并靠近Ag-ZnO纳米锥。由于在三维空间中存在多种类型的等离子体耦合,因此该过程还产生了高密度“热点”,从而放大了SERS信号。该集成设备已成功用于测量湖水中的甲基对硫磷,在检测水生污染物方面显示出巨大潜力。

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