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Measurement of temperature-dependent diffusion coefficients using a confocal Raman microscope with microfluidic chips considering laser-induced heating effect

机译:考虑到激光诱导的加热效应,使用带微流芯片的共聚焦拉曼显微镜测量温度相关的扩散系数

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摘要

Conventional methods for measuring diffusion coefficients (D) are complex and time consuming. This study presents a method for the continuous measurement of temperature-dependent diffusion coefficients using a confocal Raman microscope with microfluidic chips. Concentration information was collected by a Raman microscope to extract D values. An isothermal diffusion process at various temperatures was ensured by coupling the silicon-based microfluidic chip with an isothermal plate. In the simple silicon/glass chip, the heating effect induced by a Raman laser was observed to contribute to abnormally high D values. To eliminate the heating effect, a 200 nm-thick aluminum (Al) reflection film was used to coat the channel bottom. The Al film substantially reduced absorption of laser power, thus ensuring precise D values in excellent agreement with literature data. Other potential methods to eliminate the heating effect were also evaluated by computational fluid dynamics (CFD) simulations and were found impractical for implementation. Consequently, this method for the continuous measurement of temperature-dependent diffusion coefficients is proven to be accurate, efficient, and reliable.
机译:测量扩散系数(D)的常规方法是复杂且耗时的。这项研究提出了一种使用带有微流控芯片的共聚焦拉曼显微镜连续测量温度相关扩散系数的方法。通过拉曼显微镜收集浓度信息以提取D值。通过将硅基微流控芯片与等温板耦合,可以确保在不同温度下的等温扩散过程。在简单的硅/玻璃芯片中,观察到由拉曼激光引起的热效应导致异常高的D值。为了消除加热效果,使用200 nm厚的铝(Al)反射膜覆盖通道底部。铝膜大大降低了激光功率的吸收,从而确保了精确的D值,与文献数据极为吻合。还通过计算流体动力学(CFD)模拟评估了其他消除加热效果的潜在方法,发现这些方法不可行。因此,这种用于连续测量与温度有关的扩散系数的方法被证明是准确,有效和可靠的。

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