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用于5G Sub-6 GHz应用的具有高效介质比的三频段方形分裂环谐振器超材料吸波器设计

Triple-Band Square Split-Ring Resonator Metamaterial Absorber Design with High Effective Medium Ratio for 5G Sub-6 GHz Applications.

作者信息

Hakim Mohammad Lutful, Islam Mohammad Tariqul, Alam Touhidul, Abdul Rahim Sharul Kamal, Bais Badariah, Islam Md Shabiul, Soliman Mohamed S

机构信息

Pusat Sains Ankasa (ANGKASA), Institut Perubahan Iklim, Universiti Kebangsaan Malaysia (UKM), Bangi 43600, Selangor, Malaysia.

Department of Electrical, Electronic and Systems Engineering, Faculty of Engineering and Built Environment, Universiti Kebangsaan Malaysia (UKM), Bangi 43600, Selangor, Malaysia.

出版信息

Nanomaterials (Basel). 2023 Jan 4;13(2):222. doi: 10.3390/nano13020222.

Abstract

This article proposes a square split-ring resonator (SSRR) metamaterial absorber (MMA) for sub-6 GHz application. The unit cell of the MMA was designed and fabricated on commercially available low-cost FR-4 substrate material with a dielectric constant o 4.3. The higher effective medium ratio (EMR) of the designed unit cell shows the compactness of the MMA. The dimension of the unit cell is 9.5 × 9.5 × 1.6 mm, which consists of two split rings and two arms with outer SSRR. The proposed MMA operates at 2.5 GHz, 4.9 GHz, and 6 GHz frequency bands with a 90% absorption peak and shows a single negative metamaterial property. The E-field, H-field, and surface current are also explored in support of absorption analysis. Moreover, the equivalent circuit model of the proposed MMA is modelled and simulated to validate the resonance behavior of the MMA structure. Finally, the proposed MMA can be used for the specific frequency bands of 5G applications such as signal absorption, crowdsensing, SAR reduction, etc.

摘要

本文提出了一种用于6GHz以下应用的方形开口环谐振器(SSRR)超材料吸波器(MMA)。该MMA的单元结构是在具有4.3介电常数的市售低成本FR-4衬底材料上设计和制造的。所设计单元结构的较高有效介质比(EMR)表明了该MMA的紧凑性。单元结构的尺寸为9.5×9.5×1.6mm,由两个开口环和带有外部SSRR的两个臂组成。所提出的MMA在2.5GHz、4.9GHz和6GHz频段工作,具有90%的吸收峰值,并呈现出单一的负超材料特性。还对电场、磁场和表面电流进行了研究以支持吸收分析。此外,对所提出的MMA的等效电路模型进行了建模和仿真,以验证MMA结构的谐振行为。最后,所提出的MMA可用于5G应用的特定频段,如信号吸收、人群感知、比吸收率降低等。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/bb4d/9861934/24d523bb5e4a/nanomaterials-13-00222-g001.jpg

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