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Online Segment Detection by Zero-Order Diffraction of Inelastic Scattered Light for Raman Spectroscopy in a Microfluidic Device

机译:用于微流控设备中拉曼光谱的非零散散射零阶衍射在线分段检测。

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The application of microfluidic diagnostic systems is becoming more and more important for life sciences in general. Especially the development of 'lab on a chip' (LOC) systems with integrated optical detection units has been rising over the last few years, due to the applicability of such systems in point-of-care diagnostics in home care or field applications. Droplet-based microfluidic systems, where sample droplets are processed in microfluidic networks became a powerful platform for LOC technology. A promising approach concerning this field is for example microfluidic Raman spectroscopy. Raman spectroscopy is successfully carried out in a microfluidic device applying a liquid/liquid segmented flow, where analyte-containing droplets (ACD) are formed in a carrier fluid like e.g. oil. However the detection within this system is limited as information of both phases, ACD and carrier fluid, are collected and therefore the acquisition time for each spectrum is relatively small. An improvement can be achieved by employing a trigger system, which allows the measurement of only ACD and accordingly an increase of the integration time. The challenge of implementing a trigger is to maintain a setup, which is compact with regard to a point-of-care application and allows the detection of the inelastic scattered Raman light without additional attenuation. In this contribution a new approach for the implementation of a trigger in a prototype setup for microfluidic Raman measurements is introduced. The feasibility of ACD detection by measuring not just the first-order diffraction but also the zero-order diffraction of the inelastic scattered light will be demonstrated.
机译:总体而言,微流体诊断系统的应用对于生命科学越来越重要。特别是在过去的几年中,由于集成了光学检测单元的“芯片实验室”(LOC)系统的开发一直在增长,这是因为此类系统在家庭护理或现场应用中的即时诊断中的适用性。基于液滴的微流体系统(在微流体网络中处理样品液滴)已成为LOC技术的强大平台。关于该领域的有前途的方法是例如微流体拉曼光谱法。拉曼光谱法是在应用液体/液体分段流的微流体装置中成功进行的,其中在诸如油。但是,由于收集了ACD和载液这两个相的信息,因此该系统内的检测受到限制,因此每个光谱的采集时间相对较短。通过使用触发系统可以实现改进,该触发系统仅允许测量ACD,因此增加了积分时间。实施触发器的挑战在于保持一种设置,该设置相对于即时医疗应用而言是紧凑的,并且能够在无额外衰减的情况下检测非弹性散射拉曼光。在此贡献中,介绍了一种在微流拉曼测量的原型设置中实现触发器的新方法。将证明通过测量非弹性散射光的一阶衍射和零阶衍射来进行ACD检测的可行性。

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