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用于射频(RF)化学液体传感的微流体高Q圆形基片集成波导(SIW)腔

Microfluidic High-Q Circular Substrate-Integrated Waveguide (SIW) Cavity for Radio Frequency (RF) Chemical Liquid Sensing.

作者信息

Memon Muhammad Usman, Lim Sungjoon

机构信息

School of Electrical and Electronics Engineering, College of Engineering, Chung-Ang University, 84-Heukseok-ro, Dongjak-gu, Seoul 156-756, Korea.

出版信息

Sensors (Basel). 2018 Jan 6;18(1):143. doi: 10.3390/s18010143.

Abstract

In this study, a high-Q circular substrate-integrated waveguide (SIW) cavity resonator is proposed as a non-contact and non-invasive radio frequency (RF) sensor for chemical sensing applications. The design of the structure utilizes SIW technology along with a circular shape to achieve a high unloaded Q factor, which is one of the important requirements for RF sensors. The resonant frequency of the proposed circular SIW cavity sensor changes when a liquid material or a chemical (microliters) is inserted in the sensitive area of the structure. The sensing of liquid materials with different permittivities is accomplished via the perturbation of the electric fields in the SIW configuration. When a microwell that is 4 mm in radius is installed vertically through the center of the bare circular SIW cavity, the operating frequency varies from 5.26 to 5.34 GHz. Similarly, when the microwell contains ethanol, the frequency shifts from 5.26 to 5.18 GHz, and the amplitude of reflection coefficient is shifted from -29 dB to -17 dB; when the microwell contains mixing deionized (DI)-water, the frequency moves from 5.26 to 4.98 GHz (which is also 0% Ethanol in our study), and the amplitude of reflection coefficient is shifted from -29 dB to -8 dB. A high unloaded Q factor is maintained throughout all experimental results. To demonstrate our idea, different concentrations of ethanol are tested and recorded. The experimental validation yields a close agreement between the simulations and the measurements.

摘要

在本研究中,提出了一种高Q值圆形基片集成波导(SIW)腔谐振器,作为一种用于化学传感应用的非接触式、非侵入式射频(RF)传感器。该结构的设计利用了SIW技术以及圆形形状,以实现高的空载Q因子,这是射频传感器的重要要求之一。当将液体材料或化学物质(微升)插入该结构的敏感区域时,所提出的圆形SIW腔传感器的谐振频率会发生变化。通过SIW配置中电场的扰动来实现对具有不同介电常数的液体材料的传感。当一个半径为4 mm的微孔垂直穿过裸圆形SIW腔的中心安装时,工作频率从5.26 GHz变化到5.34 GHz。同样,当微孔中含有乙醇时,频率从5.26 GHz偏移到5.18 GHz,反射系数的幅度从-29 dB偏移到-17 dB;当微孔中含有去离子(DI)水混合物时,频率从5.26 GHz移动到4.98 GHz(在我们的研究中这也相当于0%乙醇),反射系数的幅度从-29 dB偏移到-8 dB。在所有实验结果中都保持了较高的空载Q因子。为了验证我们的想法,对不同浓度的乙醇进行了测试和记录。实验验证结果表明模拟结果与测量结果非常吻合。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/51bc/5796479/0fe470ab49ca/sensors-18-00143-g001.jpg

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