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Evaluation methodology of gas permeable characterization in a polymer-based microfluidic device by confocal fluorescence imaging

机译:共聚焦荧光成像在基于聚合物的微流控装置中透气性表征的评估方法

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The evaluation technique of gas permeable characterization has been developed for an increased efficiency of gas-liquid chemical reactions and high accuracy of environmental diagnosis. This technique enables us to measure spatial distributions of velocity and dissolved gas concentration by utilizing confocal micron-resolution particle image velocimetry combined with a laser-induced fluorescence technique. Microfluidic devices with gas permeability through polymer membranes are composed of a cover glass and a polydimethylsiloxane (PDMS) chip with the ability to permeate various gases, since PDMS is an elastomeric material. In the chip, microchannels are manufactured using a cryogenic micromachining system. The gas permeation is dominated by several factors, such as the gas and liquid flow rates, the membrane thickness between the gas and liquid flow, and the surface area of the membranes. The advantage of the present device is to realize the control of gas permeability by changing the surface roughness of PDMS, because the cryogenic micromachining enables us to control the surface roughness of microchannels and an increase in roughness yields an increase in the surface area of membranes. The experiments were performed under several conditions with a change in the gas flow rate, the PDMS membrane thickness and the surface roughness, which affect the gas permeation phenomena. The spatial distributions of velocity and dissolved gas concentration were measured in the liquid flow fields. The results indicate that the velocity-vector distributions have similar patterns under all experimental conditions, while the dissolved gas concentration distributions have different patterns. It was observed that the gas permeability through PDMS membranes increased with an increase in gas flow rates and surface roughness and with a decrease in membrane thicknesses, which is in qualitative agreement with membrane theory. The important conclusion is that the proposed technique is suggested to have the possibility of evaluating the characterization of gas permeable microfluidic device through membranes.
机译:为了提高气液化学反应的效率和环境诊断的准确性,已经开发了透气性表征的评估技术。这项技术使我们能够通过利用共焦微米分辨率的颗粒图像测速技术结合激光诱导的荧光技术来测量速度和溶解气体浓度的空间分布。具有穿透聚合物膜的透气性的微流体装置由盖玻片和能够渗透各种气体的聚二甲基硅氧烷(PDMS)芯片组成,因为PDMS是一种弹性体材料。在芯片中,使用低温微加工系统制造微通道。气体渗透受几个因素支配,例如气体和液体的流速,气体和液体之间的膜厚度以及膜的表面积。本装置的优点是通过改变PDMS的表面粗糙度来实现对气体渗透性的控制,因为低温微机械加工使我们能够控制微通道的表面粗糙度,并且粗糙度的增加导致膜表面积的增加。实验是在几种条件下进行的,其中气体流速,PDMS膜厚度和表面粗糙度的变化会影响气体的渗透现象。在液体流场中测量速度和溶解气体浓度的空间分布。结果表明,在所有实验条件下,速度矢量分布都具有相似的模式,而溶解气体浓度分布具有不同的模式。观察到,通过PDMS膜的气体渗透率随着气体流速和表面粗糙度的增加以及膜厚度的减小而增加,这与膜理论在质量上是一致的。重要的结论是,所提出的技术被建议具有通过膜评估透气微流体装置的特性的可能性。

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