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Three-dimensional confocal Raman temperature characterization of electrokinetically pumped microchannels

机译:电动泵浦微通道的三维共焦拉曼温度表征

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摘要

A novel method for noninvasive, three-dimensional temperature characterization in microfluidic devices is presented. A specially designed confocal microscope was built and used to measure water temperature by sensing the Raman spectrum variations of the liquid. This is achieved by splitting the spectrum in the isosbestic point and detecting it with two photon counters. The difference between the signals of each detector divided by their sum shows a linear dependence with temperature. A fiber-coupled laser beam is used to pump the sample with 25 mW of optical power at 405 nm. This allows a 0.8 K temperature precision and a 9 mu m axial resolution using a 1 s integration time. These features make temperature profiling in all dimensions possible, in contrast with previous methods, where the information present in the height of the channel is lost and the whole spectrum needs to be recovered before computing the sample temperature. Using this technique, different geometries of polydimethyl-siloxane microchannels sealed with a 150 mu m thick glass coverslip were studied, showing that heat flow through the glass is the dominating dissipation mechanism and defines the maximum temperature in the channel. The results show good agreement with previous work found in the literature. (C) 2019 Optical Society of America
机译:提出了一种微流体装置中的非侵入性三维温度表征的新方法。通过感测液体的拉曼光谱变化来构建专门设计的共聚焦显微镜并用于测量水温。这是通过将光谱分解在Isosbestic点中并用两个光子计数器检测它来实现。每个检测器的信号之间的差异除以其总和显示了与温度的线性依赖性。纤维耦合的激光束用于将样品泵在405nm处用25 mw的光功率泵送。这允许使用0.8k的温度精度和9μM使用1 S集成时间的轴分辨率。这些特征与先前的方法相比,这些特征使得所有尺寸的温度分布相反,其中存在在通道高度的信息丢失并且在计算样品温度之前需要恢复整个频谱。使用该技术,研究了用150μm厚玻璃盖玻片密封的多二甲基 - 硅氧烷微通道的不同几何物,显示通过玻璃的热流是主导耗散机构,并限定通道中的最高温度。结果表明,与文献中的以前的工作表现出良好的一致。 (c)2019年光学学会

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