衬底集成波导(SIW)微波传感器在介电材料表征中的理论和模型:综述

Nazmus Sakib Khair , Nurhafizah Abu Talip Yusof , Yasmin Abdul Wahab , Bifta Sama Bari , Nur Idayu Ayob , Maizatul Zolkapli
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引用次数: 2

摘要

微波传感器具有敏感性、快速响应和非侵入性等吸引人的特性,使其成为高精度测量材料特性的宝贵工具。广泛的技术,包括腔波导、平面传输线、腔波导微扰、开放式同轴探针和自由空间传输,已被用于表征对其成本效益、易于制造、高灵敏度、良好品质因数(Q因数)和紧凑尺寸至关重要的材料,从而允许它们应用于不同的材料类型。在微波传感器类型中,衬底集成波导(SIW)已成为一种很有前途的技术,可以有效地表征材料。本文综述了SIW微波传感器在介电材料表征方面的现状和潜在机遇。它深入了解了SIW微波传感器在不同领域的各种设计原理、技术和应用,突出了它们与传统波导基传感器相比的优势和局限性。此外,本文总结了几种可用于SIW微波传感器的制造方法,以生产高效可靠的传感器。此外,本文提供的未来方向旨在为基于SIW的微波传感器的持续开发和优化做出贡献,以实现准确高效的介电材料表征。总的来说,这篇综述文章为寻求了解SIW微波传感器在材料表征中的作用的新研究人员提供了有益的资源。它概述了SIW传感器的现状、机遇和潜在进展,阐明了它们在材料表征领域的重要性和潜在影响。
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Substrate-integrated waveguide (SIW) microwave sensor theory and model in characterising dielectric material: A review

Microwave sensors offer appealing features such as susceptibility, quick response, and non-invasiveness, making them valuable tools for highly accurate measurements of material characterisation. A wide range of techniques, including cavity waveguide, planar transmission line, cavity waveguide perturbation, open-ended coaxial probe, and free-space transmission, have been employed to characterise materials that are essential for their cost-effectiveness, ease of manufacturing, high sensitivity, good quality factor (Q-factor), and compact size, allowing them to be applied to different material types. Among the microwave sensor types, the substrate-integrated waveguide (SIW) has emerged as a promising technology in order to characterise materials in an efficient manner. This paper presents a review of the current state and potential opportunities of SIW microwave sensors in the characterisation of dielectric materials. It provides insights into various design principles, techniques, and applications of SIW microwave sensors across different sectors, highlighting their advantages and limitations compared to conventional waveguide-based sensors. Furthermore, the paper summarises several fabrication methods that can be implemented for SIW microwave sensors to enable the production of efficient and reliable sensors. Additionally, the future directions provided in this paper aim to contribute to the ongoing development and optimisation of SIW-based microwave sensors for accurate and efficient dielectric material characterisation. Overall, this review article serves as a beneficial resource for new researchers seeking to understand the role of SIW microwave sensors in material characterisation. It outlines the current status, opportunities, and potential advancements of SIW sensors, shedding light on their significance and potential impact in the field of material characterisation.

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