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A nanoporous optofluidic microsystem for highly sensitive and repeatable surface enhanced Raman spectroscopy detection

机译:用于高灵敏度和可重复的表面增强拉曼光谱检测的纳米多孔光流体微系统

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摘要

We report the demonstration of an optofluidic surface enhanced Raman spectroscopy (SERS) device that leverages a nanoporous microfluidic matrix to improve the SERS detection performance by more than two orders of magnitude as compared to a typical open microfluidic channel. Although it is a growing trend to integrate optical biosensors into microfluidic channels, this basic combination has been detrimental to the sensing performance when applied to SERS. Recently, however, synergistic combinations between microfluidic functions and photonics (i.e., optofluidics) have been implemented that improve the detection performance of SERS. Conceptually, the simplest optofluidic SERS techniques reported to date utilize a single nanofluidic channel to trap nanoparticle-analyte conjugates as a method of preconcentration before detection. In this work, we leverage this paradigm while improving upon the simplicity by forming a 3D nanofluidic network with packed nanoporous silica microspheres in a microfluidic channel; this creates a concentration matrix that traps silver nanoclusters and adsorbed analytes into the SERS detection volume. With this approach, we are able to achieve a detection limit of 400 attomoles of Rhodamine 6G after only 2 min of sample loading with high chip-to-chip repeatability. Due to the high number of fluidic paths in the nanoporous channel, this approach is less prone to clogging than single nanofluidic inlets, and the loading time is decreased compared to previous reports. In addition, fabrication of this microsystem is quite simple, as nanoscale fabrication is not necessary. Finally, integrated multimode fiber optic cables eliminate the need for optical alignment, and thus the device is relevant for portable and automated applications in the field, including point-of-sample and point-of-care detection. To illustrate a relevant field-based application, we demonstrate the detection of 12 ppb of the organophosphate malathion in water using the nanofluidic SERS microsystem.
机译:我们报告了光流体表面增强拉曼光谱(SERS)设备的演示,该设备利用纳米多孔微流体基质,与典型的开放式微流体通道相比,将SERS检测性能提高了两个数量级以上。尽管将光学生物传感器集成到微流体通道中的趋势正在增长,但是这种基本的组合在应用于SERS时不利于传感性能。然而,近来,已经实现了微流体功能和光子学(即,光流体学)之间的协同组合,其改善了SERS的检测性能。从概念上讲,迄今为止报道的最简单的光流体SERS技术利用单个纳米流体通道捕获纳米颗粒-分析物结合物,作为检测前的预浓缩方法。在这项工作中,我们利用这种范式,同时通过在微流体通道中形成具有填充纳米孔二氧化硅微球的3D纳米流体网络来改善简单性。这将创建一个浓度矩阵,将银纳米团簇和吸附的分析物捕获到SERS检测体积中。通过这种方法,仅需加载样品2分钟即可实现罗丹明6G的400个阿托姆的检测限,并且具有很高的芯片间重复性。由于纳米多孔通道中的流体路径数量众多,因此该方法比单个纳米流体入口更不易堵塞,并且与以前的报道相比,加载时间有所减少。另外,该微系统的制造非常简单,因为不需要纳米级制造。最后,集成的多模光纤电缆消除了光学对准的需要,因此该设备与现场便携式和自动化应用(包括采样点和即时检测)相关。为了说明相关的基于现场的应用,我们演示了使用纳米流体SERS微型系统检测水中12 ppb的有机磷酸马拉硫磷。

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