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首页> 外文期刊>Lab on a chip >A low-cost, non-invasive phase velocity and length meter and controller for multiphase lab-in-a-tube devices
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A low-cost, non-invasive phase velocity and length meter and controller for multiphase lab-in-a-tube devices

机译:用于多相实验室内装置的低成本,非侵入式相速度和长度计和控制器

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Opportunities for accessible microfluidic device integration have sharply grown with the rise of readily available lab-in-a-tube strategies. Herein, we present a facile, non-invasive, plug-and-play phase velocity and length measuring strategy for rapid deployment onto tube-based microfluidic systems, enabling quick and accurate residence (reaction) time measurement and tuning. Our approach utilizes inexpensive offthe- shelf optical phase sensors and requires no prior knowledge of the fluid composition or physical properties. Compared to camera-based measurements in fluoropolymer tubing, the optical phase sensor-based technique shows mean absolute percentage errors of 1.3% for velocity and 3.3% for length. Utilizing the developed multiphase flow monitoring technique, we screen the accessible parameter space of gas-liquid segmented flows. To further demonstrate the functionality of this process monitoring strategy, we implement two feedback controllers to establish simultaneous setpoint control for phase velocity and length. Next, to showcase the effectiveness and versatility of the developed multiphase flow process controller, we apply it to systematic studies of the effect of liquid slug velocity (controlling precursor mixing timescale) on the colloidal synthesis of cesium lead tribromide nanocrystals. By varying the liquid slug velocity and maintaining constant precursor composition, liquid slug length, and residence time, we observe a bandgap tunability from 2.43 eV (510 nm) to 2.52 eV (494 nm).
机译:随着易于使用的实验室策略的兴起,可访问的微流体设备集成的机会急剧增长。在此,我们介绍了一种容易,非侵入性,即插即用的阶段速度和长度测量策略,用于快速部署到基于管的微流体系统上,从而实现快速准确的住宅(反应)时间测量和调谐。我们的方法利用廉价的搁板光学相传感器,并且不需要先前了解流体成分或物理性质。与含氟聚合物管中的基于相机的测量相比,基于光学相位传感器的技术显示出平均百分比误差为1.3%,速度为3.3%。利用开发的多相流动监测技术,我们筛选了气液分段流的可接近参数空间。为了进一步演示该过程监视策略的功能,我们实现了两个反馈控制器以建立相位速度和长度的同时设定值控制。接下来,为了展示所开发的多相流动过程控制器的有效性和多功能性,我们将其应用于液体块速度(控制前体混合时间尺寸)对铯铅三溴化铯纳米晶体胶体合成作用的系统研究。通过改变液体块速度并保持恒定的前体组合物,液体块长度和停留时间,观察到2.43eV(510nm)到2.52eV(494nm)的带隙可调性。

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