Haq Tanveerul, Koziel Slawomir
Engineering Optimization and Modeling Center, Reykjavik University, 102 Reykjavik, Iceland.
Faculty of Electronics, Telecommunications and Informatics, Gdansk University of Technology, 80-233 Gdansk, Poland.
Sensors (Basel). 2023 Nov 12;23(22):9138. doi: 10.3390/s23229138.
The design of high-performance complementary meta-resonators for microwave sensors featuring high sensitivity and consistent evaluation of dielectric materials is challenging. This paper presents the design and implementation of a novel complementary resonator with high sensitivity for dielectric substrate characterization based on permittivity and thickness. A complementary crossed arrow resonator (CCAR) is proposed and integrated with a fifty-ohm microstrip transmission line. The CCAR's distinct geometry, which consists of crossed arrow-shaped components, allows for the implementation of a resonator with exceptional sensitivity to changes in permittivity and thickness of the material under test (MUT). The CCAR's geometrical parameters are optimized to resonate at 15 GHz. The CCAR sensor's working principle is explained using a lumped-element equivalent circuit. The optimized CCAR sensor is fabricated using an LPKF protolaser on a 0.762-mm thick dielectric substrate AD250C. The MUTs with dielectric permittivity ranging from 2.5 to 10.2 and thickness ranging from 0.5 mm to 1.9 mm are used to investigate the properties and calibrate the proposed CCAR sensor. A two-dimensional calibration surface is developed using an inverse regression modelling approach to ensure precise and reliable measurements. The proposed CCAR sensor is distinguished by its high sensitivity of 5.74%, low fabrication cost, and enhanced performance compared to state-of-the-art designs, making it a versatile instrument for dielectric characterization.
设计具有高灵敏度且能对介电材料进行一致性评估的用于微波传感器的高性能互补元谐振器颇具挑战性。本文介绍了一种基于介电常数和厚度对介电基片进行表征的新型高灵敏度互补谐振器的设计与实现。提出了一种互补交叉箭头谐振器(CCAR),并将其与五十欧姆微带传输线集成。CCAR独特的几何结构由交叉箭头形部件组成,能够实现对被测材料(MUT)的介电常数和厚度变化具有卓越灵敏度的谐振器。对CCAR的几何参数进行了优化,使其在15GHz处谐振。使用集总元件等效电路解释了CCAR传感器的工作原理。采用LPKF protolaser在0.762毫米厚的介电基片AD250C上制作了优化后的CCAR传感器。使用介电常数范围为2.5至10.2且厚度范围为0.5毫米至1.9毫米的MUT来研究其性能并校准所提出的CCAR传感器。采用逆回归建模方法开发了二维校准曲面,以确保精确可靠的测量。所提出的CCAR传感器具有5.74%的高灵敏度、低制造成本以及与现有设计相比有所提升的性能,使其成为介电特性表征的通用仪器。