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Spectral Optical Readout of Rectangular–Miniature Hollow Glass Tubing for Refractive Index Sensing

机译:矩形-微型空心玻璃管的光谱光学读数用于折射率传感

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摘要

For answering the growing demand of innovative micro-fluidic devices able to measure the refractive index of samples in extremely low volumes, this paper presents an overview of the performances of a micro-opto-fluidic sensing platform that employs rectangular, miniature hollow glass tubings. The operating principle is described by showing the analytical model of the tubing, obtained as superposition of different optical cavities, and the optical readout method based on spectral reflectivity detection. We have analyzed, in particular, the theoretical and experimental optical features of rectangular tubings with asymmetrical geometry, thus with channel depth larger than the thickness of the glass walls, though all of them in the range of a few tens of micrometers. The origins of the complex line-shape of the spectral response in reflection, due to the different cavities formed by the tubing flat walls and channel, have been investigated using a Fourier transform analysis. The implemented instrumental configuration, based on standard telecom fiberoptic components and a semiconductor broadband optical source emitting in the near infrared wavelength region centered at 1.55 µm, has allowed acquisition of reflectivity spectra for experimental verification of the expected theoretical behavior. We have achieved detection of refractive index variations related to the change of concentration of glucose-water solutions flowing through the tubing by monitoring the spectral shift of the optical resonances.
机译:为了满足能够测量极低体积样品折射率的创新型微流体设备不断增长的需求,本文概述了采用矩形微型中空玻璃管​​的微光传感平台的性能。通过显示管道的分析模型(通过叠加不同的光学腔而获得)以及基于光谱反射率检测的光学读出方法来描述工作原理。我们特别分析了具有不对称几何形状的矩形管的理论和实验光学特性,因此,其通道深度大于玻璃壁的厚度,尽管它们都在几十微米的范围内。已经通过傅立叶变换分析研究了由于管道平壁和通道形成的腔不同而导致反射光谱响应的复杂线形的起源。基于标准的电信光纤组件和半导体宽带光源(在以1.55 µm为中心的近红外波长范围内发射)的已实现的仪器配置,已允许获取反射光谱,以进行实验验证所期望的理论行为。通过监测光学共振的光谱位移,我们已经实现了与流经管道的葡萄糖水溶液浓度变化有关的折射率变化的检测。

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