Broadband complementary ring-resonator based terahertz antenna for 6G application

IF 2.5 4区 材料科学 Q3 MATERIALS SCIENCE, MULTIDISCIPLINARY Applied Physics A Pub Date : 2024-08-02 DOI:10.1007/s00339-024-07763-6
P. Jeyakumar, R. Pandeeswari, S. Saranya, B. Neeththi Aadithiya, V. Jagadeeshan, S. Kamalesh, V. Pradeep
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Abstract

This paper presents a novel metamaterial-based terahertz antenna designed to address the bandwidth requirements of future 6G wireless networks. By incorporating metamaterial etching in the ground plane, the antenna demonstrates the generation of new frequencies, significantly increasing bandwidth compared to conventional designs. Multiple terahertz antenna designs are formulated using varied metamaterial configurations, yielding disparate profiles of return loss and gain depending on the specific design types. For instance, the utilization of various metamaterial designs in microstrip patch antennas involves the incorporation of a singular unit cell. This deliberate modification enhances the generation of unique and optimized outcomes in terms of antenna performance. The utilization of a ring resonator, distinct from configurations involving singular cuts, dual cuts, and dual split rings, demonstrates the capability to manipulate and regulate the attributes of electromagnetic radiation, particularly within the terahertz and microwave frequency ranges.A singular cut antenna exhibited a return loss of \(-\)32.6 dB and a gain of 5.16 dB. Upon transitioning to a dual cut configuration, an enhancement in performance was observed, with the return loss improving to \(-\)49.91 dB and the gain increasing to 5.21 dB. However, when employing a dual split ring design, a substantial increase in return loss was noted, reaching − 57 dB. Although the gain of the dual split ring antenna surpassed that of the singular cut antenna, it fell short of the gain achieved by the dual cut configuration, measuring at 5.24 dB. The terahertz antenna is integrated into the ground plane, making use of metamaterial structures. The terahertz range (0.3 to 10 THz) offers advantages for communications, imaging, and detection due to its wider bandwidth compared to microwave wireless communications. The paper introduces an antenna design optimized for 6G applications, effectively mitigating the escalating need for enhanced frequency and expanded bandwidth requirements in communication systems.

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基于互补环谐振器的宽带太赫兹天线,适用于 6G 应用
本文介绍了一种基于超材料的新型太赫兹天线,旨在满足未来 6G 无线网络的带宽要求。通过在地平面中加入超材料蚀刻,该天线展示了新频率的产生,与传统设计相比显著提高了带宽。多种太赫兹天线设计采用了不同的超材料配置,根据具体的设计类型产生了不同的回波损耗和增益曲线。例如,在微带贴片天线中使用各种超材料设计时,需要加入一个奇异的单元。这种特意的修改可提高天线性能,产生独特的优化结果。环形谐振器的使用,有别于涉及单切、双切和双分裂环的配置,展示了操纵和调节电磁辐射属性的能力,尤其是在太赫兹和微波频率范围内。过渡到双切割配置后,性能有所提高,回波损耗提高到 49.91 dB,增益提高到 5.21 dB。然而,当采用双分裂环设计时,回波损耗大幅增加,达到 - 57 dB。虽然双分裂环天线的增益超过了单切割天线,但仍低于双切割配置的增益,为 5.24 dB。太赫兹天线利用超材料结构集成到地平面中。太赫兹范围(0.3 至 10 太赫兹)与微波无线通信相比,带宽更宽,因此在通信、成像和探测方面具有优势。本文介绍了一种针对 6G 应用进行了优化的天线设计,可有效缓解通信系统对增强频率和扩展带宽要求的不断升级。
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来源期刊
Applied Physics A
Applied Physics A 工程技术-材料科学:综合
CiteScore
4.80
自引率
7.40%
发文量
964
审稿时长
38 days
期刊介绍: Applied Physics A publishes experimental and theoretical investigations in applied physics as regular articles, rapid communications, and invited papers. The distinguished 30-member Board of Editors reflects the interdisciplinary approach of the journal and ensures the highest quality of peer review.
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