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FT-IR Spectroscopic Imaging of Reactions in Multiphase Flow in Microfluidic Channels

机译:FT-IR光谱成像微流道中多相流中的反应

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摘要

Rapid, in situ, and label-free chemical analysis in microfluidic devices is highly desirable. FT-IR spectroscopic imaging has previously been shown to be a powerful tool to visualize the distribution of different chemicals in flows in a microfluidic device at near video rate imaging speed without tracers or dyes. This paper demonstrates the possibility of using this imaging technology to capture the chemical information of all reactants and products at different points in time and space in a two-phase system. Differences in the rates of chemical reactions in laminar flow and segmented flow systems are also compared. Neutralization of benzoic acid in decanol with disodium phosphate in water has been used as the model reaction. Quantitative information, such as concentration profiles of reactant and products, can be extracted from the imaging data. The same feed flow rate was used in both the laminar flow and segmented flow systems. The laminar flow pattern was achieved using a plain wide T-junction, whereas the segmented flow was achieved by introducing a narrowed section and a nozzle at the T-junction. The results show that the reaction rate is limited by diffusion and is much slower with the laminar flow pattern, whereas the reaction is completed more quickly in the segmented flow due to better mixing.
机译:在微流体装置中进行快速,原位和无标记的化学分析是非常需要的。 FT-IR光谱成像以前被证明是一种强大的工具,可以在没有示踪剂或染料的情况下以接近视频速率的成像速度可视化微流体设备中流体中不同化学物质的分布。本文证明了使用这种成像技术捕获两相系统中不同时间和空间上所有反应物和产物的化学信息的可能性。还比较了层流和分段流系统中化学反应速率的差异。癸醇中的苯甲酸与水中的磷酸二钠中和已用作模型反应。可以从成像数据中提取定量信息,例如反应物和产物的浓度曲线。在层流和分段流系统中使用相同的进料流速。层流模式是使用普通的宽T形结实现的,而分段流是通过在T形结处引入变窄的部分和喷嘴来实现的。结果表明,反应速率受到扩散的限制,并且在层流模式下反应速率要慢得多,而由于更好的混合,在分段流中反应更快地完成。

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