Design of Complementary Hexagonal Metamaterial Based HMSIW Band-Pass Filter and Reconfigurable SIW Filter Using PIN Diodes

IF 0.8 Q4 ENGINEERING, ELECTRICAL & ELECTRONIC
Hichem Boubakar, M. Abri, M. Benaissa
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引用次数: 5

Abstract

This paper is divided into two sections, in the first section, a new SIW and a half-mode SIW band-pass filters based on complementary hexagonal metamaterial cells (C-HMCs) are proposed. Firstly, the SIW is analyzed in case of using two C-HMC cells and in the case of using four of these cells.  Secondly, the HMSIW tunable BPF is studied and optimized. The size of the half mode is reduced by almost 50%. This filter design has a very high insertion loss about -0.4 dB, and significant transmission bandwidth extending from 5.9 GHz to 6.5 GHz. In the second section of this paper, an electronically reconfigurable SIW band-pass filter is proposed. By implementing two PIN diodes in the gaps of the two C-HMC, the results of turning the diodes ON or OFF individually is a switching in the frequency center, between 5.8 GHz and 6.8 GHz. Also, a dual band with two frequency centers at (5.6 GHz and 7.4 GHz) is achieved by turning both of the diodes ON. In addition, the metamaterial properties of all the proposed filters are investigated and presented in this work.
基于互补六边形超材料的HMSIW带通滤波器和PIN二极管可重构SIW滤波器的设计
本文分为两部分,第一部分提出了一种基于互补六边形超材料单元(C-HMCs)的新型SIW和半模SIW带通滤波器。首先,在使用两个C-HMC细胞的情况下以及在使用这些细胞中的四个的情况下分析SIW。其次,对HMSIW可调谐BPF进行了研究和优化。半模的尺寸减小了近50%。这种滤波器设计具有大约-0.4dB的非常高的插入损耗,并且显著的传输带宽从5.9GHz扩展到6.5GHz。在本文的第二部分中,提出了一种电子可重构的SIW带通滤波器。通过在两个C-HMC的间隙中实现两个PIN二极管,单独接通或断开二极管的结果是在5.8GHz和6.8GHz之间的频率中心进行切换。此外,通过打开两个二极管,实现了在(5.6 GHz和7.4 GHz)具有两个频率中心的双频带。此外,本工作还研究并介绍了所有提出的滤波器的超材料特性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Advanced Electromagnetics
Advanced Electromagnetics ENGINEERING, ELECTRICAL & ELECTRONIC-
CiteScore
2.40
自引率
12.50%
发文量
33
审稿时长
10 weeks
期刊介绍: Advanced Electromagnetics, is electronic peer-reviewed open access journal that publishes original research articles as well as review articles in all areas of electromagnetic science and engineering. The aim of the journal is to become a premier open access source of high quality research that spans the entire broad field of electromagnetics from classic to quantum electrodynamics.
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