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用于敏感且可重复的现场化学污染物检测的光流控表面增强拉曼光谱微系统。

Optofluidic surface enhanced Raman spectroscopy microsystem for sensitive and repeatable on-site detection of chemical contaminants.

机构信息

Fischell Department of Bioengineering, University of Maryland, College Park, 20742, United States.

出版信息

Anal Chem. 2012 Sep 18;84(18):7992-8. doi: 10.1021/ac301747b. Epub 2012 Sep 5.

DOI:10.1021/ac301747b
PMID:22924879
Abstract

We demonstrate highly sensitive detection of real-world food and water contaminants using a portable and automated optofluidic surface enhanced Raman spectroscopy (SERS) microsystem. The optofluidic SERS device utilizes a porous microfluidic matrix formed by packed silica microspheres to concentrate silver nanoparticles and adsorbed analyte molecules, resulting in greatly improved SERS detection performance. In addition, a passive micromixer that mixes silver nanoparticles into the sample solution is integrated into the device for improved automation. Furthermore, two optical fibers are integrated into the device and aligned to the detection volume to improve the automation as compared to confocal SERS, which requires focusing and alignment. The device exhibits up to 2 orders of magnitude improvement in SERS performance as compared to conventional microfluidic SERS in an open channel. Using the optofluidic SERS device, the food contaminant melamine was detected in low concentrations, with an estimated limit of detection (LOD) of 63 ppb, while the fungicide thiram was detected down to an estimated LOD of 50 ppt. In both cases, the reported results meet the U.S. federal requirements. Additionally, it is shown that the device continues to exhibit excellent performance even when mated to a commercially available portable spectrometer for the trace detection of thiram. This combination of the optofluidic SERS microsystem with a portable spectrometer will lead to highly sensitive and automated sensing systems for on-site detection of food and water contaminants in the field.

摘要

我们展示了一种使用便携式和自动化的光流体表面增强拉曼光谱(SERS)微系统对真实世界的食品和水污染物进行高灵敏度检测的方法。该光流体 SERS 设备利用由填充的二氧化硅微球形成的多孔微流控基质来浓缩银纳米颗粒和吸附的分析物分子,从而大大提高了 SERS 检测性能。此外,该设备还集成了一个被动微混合器,可将银纳米颗粒混入样品溶液中,以提高自动化程度。此外,两根光纤被集成到设备中,并与检测体积对齐,与需要聚焦和对准的共焦 SERS 相比,提高了自动化程度。与开放式通道中的传统微流体 SERS 相比,该设备的 SERS 性能提高了 2 个数量级。使用光流体 SERS 设备,我们在低浓度下检测到了食品污染物三聚氰胺,估计其检测限(LOD)为 63 ppb,同时还检测到了杀真菌剂福美双,估计其 LOD 低至 50 ppt。在这两种情况下,报告的结果都符合美国联邦要求。此外,即使与市售的便携式光谱仪配合使用,该设备在痕量检测福美双时仍能表现出优异的性能。这种将光流体 SERS 微系统与便携式光谱仪相结合的方法将为现场检测食品和水中的污染物提供高灵敏度和自动化的传感系统。

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