Salim Ahmed, Memon Muhammad Usman, Jeong Heijun, Lim Sungjoon
School of Electrical and Electronics Engineering, College of Engineering, Chung-Ang University, 221, Heukseok-Dong, Dongjak-Gu, Seoul 156-756, Korea.
Sensors (Basel). 2020 Sep 2;20(17):4985. doi: 10.3390/s20174985.
Liquid materials' characterization using commercial probes and radio frequency techniques is expensive and complex. This study proposes a compact and cost-effective radio frequency sensor system to measure the dielectric constant using a three-material calibration. The simplified approach measures reflection coefficient magnitudes for all four materials rather than the complex values in conventional permittivity detection systems. We employ a sensor module based on a circular substrate-integrated waveguide with measured unloaded quality factor = 910 to ensure measurement reliability. Miniaturized quarter-mode substrate-integrated waveguide resonators are integrated with four microfluidic channels containing three known materials and one unknown analyte. Step-wise measurement and linearity ensures maximum 4% error for the dielectric constant compared with results obtained using a high-performance commercial product.
使用商业探头和射频技术对液体材料进行表征既昂贵又复杂。本研究提出了一种紧凑且经济高效的射频传感器系统,该系统使用三材料校准来测量介电常数。这种简化方法测量的是所有四种材料的反射系数幅度,而非传统介电常数检测系统中的复数值。我们采用了一个基于圆形基片集成波导的传感器模块,其测得的空载品质因数为910,以确保测量可靠性。小型化的四分之一模式基片集成波导谐振器与四个微流体通道集成在一起,其中包含三种已知材料和一种未知分析物。逐步测量和线性度确保与使用高性能商业产品获得的结果相比,介电常数的最大误差为4%。