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Quantitative full-colour transmitted light microscopy and dyes for concentration mapping and measurement of diffusion coefficients in microfluidic architectures

机译:定量全色透射光显微镜和染料,用于浓度映射和微流控体系结构中扩散系数的测量

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摘要

A simple and versatile methodology has been developed for the simultaneous measurement of multiple concentration profiles of colourants in transparent microfluidic systems, using a conventional transmitted light microscope, a digital colour (RGB) camera and numerical image processing combined with multicomponent analysis. Rigorous application of the Beer-Lambert law would require monochromatic probe conditions, but in spite of the broad spectral bandwidths of the three colour channels of the camera, a linear relation between the measured optical density and dye concentration is established under certain conditions. An optimised collection of dye solutions for the quantitative optical microscopic characterisation of microfluidic devices is proposed. Using the methodology for optical concentration measurement we then implement and validate a simplified and robust method for the microfluidic measurement of diffusion coefficients using an H-filter architecture. It consists of measuring the ratio of the concentrations of the two output channels of the H-filter. It enables facile determination of the diffusion coefficient, even for non-fluorescent molecules and nanoparticles, and is compatible with non-optical detection of the analyte.
机译:已开发出一种简单而通用的方法,用于使用常规的透射光显微镜,数字彩色(RGB)相机和数字图像处理与多组分分析相结合的方法,在透明微流体系统中同时测量着色剂的多种浓度曲线。严格应用比尔-朗伯定律将需要单色探针条件,但是尽管相机的三个彩色通道具有较宽的光谱带宽,但在某些条件下仍可建立测得的光密度与染料浓度之间的线性关系。提出了用于微流控设备的定量光学显微镜表征的染料溶液的优化集合。然后,使用光学浓度测量方法,我们实现并验证了使用H滤波器架构对扩散系数进行微流体测量的简化且健壮的方法。它包括测量H滤波器两个输出通道的浓度之比。即使对于非荧光分子和纳米粒子,它也可以轻松确定扩散系数,并且与分析物的非光学检测兼容。

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