BioMEMS and Bioinspired Microfluidic Laboratory, Department of Mechanical and Manufacturing Engineering, University of Calgary, Calgary, Alberta, T2N 2N1, Canada.
Department of Electrical and Computer Engineering, University of Alberta, Edmonton, AB T6G 1H9, Canada.
Sci Rep. 2018 Jan 9;8(1):139. doi: 10.1038/s41598-017-18621-2.
A novel flow sensor is presented to measure the flow rate within microchannels in a real-time, noncontact and nonintrusive manner. The microfluidic device is made of a fluidic microchannel sealed with a thin polymer layer interfacing the fluidics and microwave electronics. Deformation of the thin circular membrane alters the permittivity and conductivity over the sensitive zone of the microwave resonator device and enables high-resolution detection of flow rate in microfluidic channels using non-contact microwave as a standalone system. The flow sensor has the linear response in the range of 0-150 µl/min for the optimal sensor performance. The highest sensitivity is detected to be 0.5 µl/min for the membrane with the diameter of 3 mm and the thickness of 100 µm. The sensor is reproducible with the error of 0.1% for the flow rate of 10 µl/min. Furthermore, the sensor functioned very stable for 20 hrs performance within the cell culture incubator in 37 °C and 5% CO environment for detecting the flow rate of the culture medium. This sensor does not need any contact with the liquid and is highly compatible with several applications in energy and biomedical engineering, and particularly for microfluidic-based lab-on-chips, micro-bioreactors and organ-on-chips platforms.
提出了一种新颖的流量传感器,用于实时、非接触和非侵入式地测量微通道内的流速。该微流控装置由一个微流道组成,用一层薄的聚合物层密封,该聚合物层与微流道和微波电子设备相连接。薄圆形膜的变形会改变微波谐振器装置敏感区域的介电常数和电导率,从而能够使用非接触微波作为独立系统对微流道中的流速进行高分辨率检测。该流量传感器在最佳传感器性能下,其线性响应范围为 0-150μl/min。对于直径为 3mm 且厚度为 100μm 的膜,检测到的最高灵敏度为 0.5μl/min。对于 10μl/min 的流速,传感器的重复性误差为 0.1%。此外,该传感器在 37°C 和 5%CO 环境的细胞培养孵育器中运行 20 小时的性能非常稳定,可用于检测培养基的流速。该传感器不需要与液体接触,与能源和生物医学工程中的多个应用高度兼容,特别适用于基于微流控的微流控芯片、微生物反应器和器官芯片平台。