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共线配置的小角度光偏折用于微流控系统中的灵敏检测。

Small-angle optical deflection from collinear configuration for sensitive detection in microfluidic systems.

机构信息

College of Chemistry and College of Chemical Engineering, Sichuan University, Chengdu, P. R. China.

出版信息

Electrophoresis. 2012 Jul;33(13):1996-2004. doi: 10.1002/elps.201100442.

Abstract

This paper describes a novel detection system based on small-angle optical deflection from the collinear configuration of a microfluidic chip. In this system, the incident light beam was focused on the microchannel through the edge of a lens, resulting in a small deflection angle that deviated 20° from the collinear configuration. The emitted fluorescence was collected through the center of the same lens and delivered to a photomultiplier tube in the vertical direction; the reflection light of the chip plate was kept away from the detector. In contrast to traditional confocal and nonconfocal laser-induced fluorescence detection systems, background levels resulting from scattered excitation light, reflection and refraction from the microchip was significantly eliminated. Significant enhancement of the signal-to-noise ratio was obtained by shaping a laser beam that combined an attenuator with a spectral filter to optimize laser power and the dimensions of the laser beam. FITC and FITC-labeled amino acid were used as model analytes to demonstrate the performance sensitivity, separation efficiency, and reproducibility of this detection system by using a hybrid polydimethylsiloxane/glass microfluidic device. The limit of detection of FITC was estimated to be 2 pM (0.55 zmol) (S/N = 3). Furthermore, the single cell analysis for the determination of intracellular glutathione in a single 3T3 mouse fibroblast cell was demonstrated. The results suggest that the proposed optical arrangements will be promising for development of sensitive, low-cost microfluidic systems.

摘要

本文描述了一种基于小角度光学偏折的新型检测系统,该系统来自共线配置的微流控芯片。在该系统中,入射光束通过透镜的边缘聚焦到微通道中,产生了一个 20°的小偏折角,偏离共线配置。发射荧光通过同一透镜的中心收集,并沿垂直方向输送到光电倍增管;微芯片板的反射光被远离探测器。与传统的共焦和非共焦激光诱导荧光检测系统相比,从微芯片散射激发光、反射和折射产生的背景水平显著降低。通过将衰减器与光谱滤波器结合起来,对激光束进行整形,优化激光功率和激光束的尺寸,获得了显著增强的信噪比。使用混合聚二甲基硅氧烷/玻璃微流控器件,以 FITC 和 FITC 标记的氨基酸作为模型分析物,演示了该检测系统的性能灵敏度、分离效率和重现性。FITC 的检测限估计为 2 pM(0.55 zmol)(S/N = 3)。此外,还进行了单个 3T3 小鼠成纤维细胞内细胞内谷胱甘肽的单细胞分析。结果表明,所提出的光学布置对于开发灵敏、低成本的微流控系统将具有很大的前景。

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