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带有可互换商用光纤传感器的微流控装置的制造

Manufacturing of Microfluidic Devices with Interchangeable Commercial Fiber Optic Sensors.

作者信息

Wlodarczyk Krystian L, MacPherson William N, Hand Duncan P, Maroto-Valer M Mercedes

机构信息

Research Centre for Carbon Solutions (RCCS), School of Engineering and Physical Sciences, Heriot-Watt University, Edinburgh EH14 4AS, UK.

Applied Optics and Photonics (AOP) Group, School of Engineering and Physical Sciences, Heriot-Watt University, Edinburgh EH14 4AS, UK.

出版信息

Sensors (Basel). 2021 Nov 11;21(22):7493. doi: 10.3390/s21227493.

Abstract

In situ measurements are highly desirable in many microfluidic applications because they enable real-time, local monitoring of physical and chemical parameters, providing valuable insight into microscopic events and processes that occur in microfluidic devices. Unfortunately, the manufacturing of microfluidic devices with integrated sensors can be time-consuming, expensive, and "know-how" demanding. In this article, we describe an easy-to-implement method developed to integrate various "off-the-shelf" fiber optic sensors within microfluidic devices. To demonstrate this, we used commercial pH and pressure sensors ("pH SensorPlugs" and "FOP-MIV", respectively), which were "reversibly" attached to a glass microfluidic device using custom 3D-printed connectors. The microfluidic device, which serves here as a demonstrator, incorporates a uniform porous structure and was manufactured using a picosecond pulsed laser. The sensors were attached to the inlet and outlet channels of the microfluidic pattern to perform simple experiments, the aim of which was to evaluate the performance of both the connectors and the sensors in a practical microfluidic environment. The bespoke connectors ensured robust and watertight connection, allowing the sensors to be safely disconnected if necessary, without damaging the microfluidic device. The pH SensorPlugs were tested with a pH 7.01 buffer solution. They measured the correct pH values with an accuracy of ±0.05 pH once sufficient contact between the injected fluid and the measuring element (optode) was established. In turn, the FOP-MIV sensors were used to measure local pressure in the inlet and outlet channels during injection and the steady flow of deionized water at different rates. These sensors were calibrated up to 140 mbar and provided pressure measurements with an uncertainty that was less than ±1.5 mbar. Readouts at a rate of 4 Hz allowed us to observe dynamic pressure changes in the device during the displacement of air by water. In the case of steady flow of water, the pressure difference between the two measuring points increased linearly with increasing flow rate, complying with Darcy's law for incompressible fluids. These data can be used to determine the permeability of the porous structure within the device.

摘要

在许多微流控应用中,原位测量非常必要,因为它能对物理和化学参数进行实时、局部监测,从而深入了解微流控设备中发生的微观事件和过程。不幸的是,制造集成传感器的微流控设备可能耗时、昂贵且需要专业技术。在本文中,我们描述了一种易于实施的方法,用于将各种“现成的”光纤传感器集成到微流控设备中。为了证明这一点,我们使用了商用pH和压力传感器(分别为“pH SensorPlugs”和“FOP-MIV”),它们通过定制的3D打印连接器“可逆地”连接到玻璃微流控设备上。在此用作演示器的微流控设备具有均匀的多孔结构,是使用皮秒脉冲激光制造的。传感器连接到微流控图案的入口和出口通道以进行简单实验,目的是在实际微流控环境中评估连接器和传感器的性能。定制的连接器确保了牢固且防水的连接,必要时可安全断开传感器,而不会损坏微流控设备。pH SensorPlugs用pH 7.01缓冲溶液进行了测试。一旦注入的流体与测量元件(光极)之间建立了足够的接触,它们就能以±0.05 pH的精度测量正确的pH值。反过来,FOP-MIV传感器用于在注入过程中以及不同流速的去离子水稳定流动期间测量入口和出口通道中的局部压力。这些传感器校准至140毫巴,压力测量的不确定度小于±1.5毫巴。以4 Hz的速率读数使我们能够观察到水取代空气时设备中的动态压力变化。在水稳定流动的情况下,两个测量点之间的压力差随流速增加呈线性增加,符合不可压缩流体的达西定律。这些数据可用于确定设备内多孔结构的渗透率。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/deb5/8625633/8f6834ce1cef/sensors-21-07493-g001.jpg

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