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Towards a high-throughput real-time confocal microfluidic system for monitoring absorbance spectra in mixed-phase chemical reactions.

机译:迈向一种高通量实时共聚焦微流控系统,用于监测混合相化学反应中的吸收光谱。

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摘要

In this work, we present a compact, real-time absorbance spectroscopy instrument, designed with a particular focus on taking spectroscopic readings in a microfluidic channel environment and selectively analysing an active volume in this channel by adding confocality. There are time-saving advantages to industry in carrying out and monitoring chemical reactions in a high-throughput microfluidic environment as opposed to manually mixing and then analysing chemicals. In this paper, we use absorbance spectroscopy to investigate a particular complex mixed-phase reaction (specifically, the reaction of colloidal diluted hair dye with an oxidising agent and catalyst), which has an additional complication of oxygen gas being released then trapped in the mixture as the reaction progresses. We find that the results obtained using our instrument are comparable to those obtained in a standard spectrometer. Oxygen bubbles formed in the reaction, however, present a significant obstacle to obtaining the correct sample depth in narrow flow channels. This is mitigated through the use of a camera which views the reaction between the glass and liquid through the use of remote reimaging, allowing the bubbles to be detected via histogram analysis while spectroscopy takes place enabling rogue readings to be removed, and also serves to monitor the overall density of the ‘gassy colloidal’ mixture produced.
机译:在这项工作中,我们提出了一种紧凑的实时吸收光谱仪,其设计重点是在微流体通道环境中获取光谱读数,并通过添加共聚焦选择性地分析该通道中的有效体积。与手动混合然后分析化学物质相比,在高通量微流体环境中进行和监测化学反应具有工业上节省时间的优势。在本文中,我们使用吸收光谱法研究特定的复杂混合相反应(特别是胶体稀释的染发剂与氧化剂和催化剂的反应),这会释放出氧气,然后将其困在混合物中随着反应的进行。我们发现,使用我们的仪器获得的结果可与标准光谱仪获得的结果相媲美。然而,反应中形成的氧气气泡对在狭窄的流动通道中获得正确的样品深度提出了重大障碍。通过使用摄像头可以减轻这种情况,该摄像头通过使用远程重新成像来查看玻璃和液体之间的反应,从而可以在进行光谱分析时通过直方图分析来检测气泡,从而可以去除流氓读数,并且还可以进行监视产生的“气体胶体”混合物的总密度。

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    Lawton P. F.; Girkin J. M.;

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