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A High-Sensitivity Microfluidic Sensor Based on a Substrate Integrated Waveguide Re-Entrant Cavity for Complex Permittivity Measurement of Liquids

机译:基于基片集成波导凹腔的高灵敏度微流控传感器用于液体的复介电常数测量

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摘要

In this study, a novel non-invasive and contactless microwave sensor using a square substrate integrated waveguide (SIW) re-entrant cavity is proposed for complex permittivity measurement of chemical solutions. The working principle of this sensor is based on cavity perturbation technique, in which the resonant properties of cavity are utilized as signatures to extract the dielectric information of liquid under test (LUT). A winding microfluidic channel is designed and embedded in the gap region of the cavity to obtain a strong interaction between the induced electric field and LUT, thus achieving a high sensitivity. Also, a mathematical predictive model which quantitatively associates the resonant properties of the sensor with the dielectric constant of LUT is developed through numerical analysis. Using this predictive model, quick and accurate extraction of the complex permittivity of LUT can be easily realized. The performance of this sensor is then experimentally validated by four pure chemicals (hexane, ethyl acetate, DMSO and water) together with a set of acetone/water mixtures in various concentrations. Experimental results demonstrate that the designed sensor is capable of characterizing the complex permittivities of various liquids with an accuracy of higher than 96.76% (compared with the theoretical values obtained by Debye relaxation equations), and it is also available for quantifying the concentration ratio of a given binary mixture.
机译:在这项研究中,提出了一种使用方形衬底集成波导(SIW)凹腔的新型无创非接触式微波传感器,用于化学溶液的复介电常数测量。该传感器的工作原理基于腔体扰动技术,其中利用腔体的共振特性作为特征来提取被测液体(LUT)的介电信息。设计了绕组微流体通道并将其嵌入空腔的间隙区域中,以获得感应电场与LUT之间的强相互作用,从而实现高灵敏度。此外,通过数值分析建立了数学预测模型,该模型将传感器的共振特性与LUT的介电常数定量地关联起来。使用该预测模型,可以轻松,快速,准确地提取LUT的复介电常数。然后通过四种纯化学药品(己烷,乙酸乙酯,DMSO和水)以及一组不同浓度的丙酮/水混合物,通过实验验证该传感器的性能。实验结果表明,所设计的传感器能​​够表征各种液体的复介电常数,其准确度高于96.76%(与通过德拜弛豫方程获得的理论值相比),并且还可以用于定量分析液体的浓度比。给定二元混合物。

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