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Optofluidic membrane interferometer: An imaging method for measuring microfluidic pressure and flow rate simultaneously on a chip

机译:光电膜干涉仪:一种同时测量芯片上微流体压力和流速的成像方法

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摘要

We present a novel image-based method to measure the on-chip microfluidic pressure and flow rate simultaneously by using the integrated optofluidic membrane interferometers (OMIs). The device was constructed with two layers of structured polydimethylsiloxane (PDMS) on a glass substrate by multilayer soft lithography. The OMI consists of a flexible air-gap optical cavity which upon illumination by monochromatic light generates interference patterns that depends on the pressure. These interference patterns were captured with a microscope and analyzed by computer based on a pattern recognition algorithm. Compared with the previous techniques for pressure sensing, this method offers several advantages including low cost, simple fabrication, large dynamic range, and high sensitivity. For pressure sensing, we demonstrate a dynamic range of 0-10 psi with an accuracy of ±2% of full scale. Since multiple OMIs can be integrated into a single chip for detecting pressures at multiple locations simultaneously, we also demonstrated a microfluidic flow sensing by measuring the differential pressure along a channel. Thanks to the simple fabrication that is compatible with normal microfluidics, such OMIs can be easily integrated into other microfluidic systems for in situ fluid monitoring.
机译:我们提出了一种新的基于图像的方法,通过使用集成的光流体膜干涉仪(OMI)同时测量芯片上的微流体压力和流速。通过多层软光刻在玻璃基板上用两层结构化聚二甲基硅氧烷(PDMS)构造该器件。 OMI由一个柔性的气隙光学腔组成,该腔在单色光照射下会产生取决于压力的干涉图样。用显微镜捕获这些干涉图案,并基于图案识别算法通过计算机进行分析。与以前的压力感测技术相比,该方法具有许多优点,包括成本低,制造简单,动态范围大和灵敏度高。对于压力传感,我们演示了0-10 psi的动态范围,精度为满量程的±2%。由于可以将多个OMI集成到单个芯片中以同时检测多个位置的压力,因此我们还通过测量沿通道的压差演示了微流体流量传感。由于与常规微流体兼容的简单制造,此类OMI可以轻松集成到其他微流体系统中,以进行原位流体监测。

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