High-performance THz Metallic Axial Mode Helix Antenna with Optimised Truncated Hollow Cone Ground Plane for 6G Wireless Communication System
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Published:2023-11-24
Issue:1
Volume:32
Page:249-264
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ISSN:2231-8526
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Container-title:Pertanika Journal of Science and Technology
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language:en
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Short-container-title:JST
Author:
Mayoof Hajiyat Zahraa Raad,Ismail Alyani,Sali Aduwati,Hamidon Mohd. Nizar
Abstract
The Terahertz (THz) band antenna configuration operates in the 0.1–10 THz frequency range and offers a stable performance for future 6th Generation (6G) wireless communication systems. However, the available metallic axial mode helix antenna designs exhibit a peak directivity of lower than 18 dBi within 0.5–1 THz, making it inappropriate to be applied in wireless communication systems. Therefore, this study proposed a high-performance THz metallic five-turn axial mode helix antenna with an optimised truncated hollow cone ground plane for 6G wireless communication systems. Following the creation of the proposed antenna design using cost-effective copper (annealed), the truncated hollow cone ground plane of the THz axial mode helix antenna was optimised via simulation in a Computer Simulation Technology Microwave Studio (CST MWS) software and a verification of the proposed THz antenna design in Analysis System High-Frequency Structure Simulator (Ansys HFSS) software for a fair comparison. Based on the results, the proposed THz metallic axial mode helix antenna with optimised truncated hollow cone ground plane recorded an impedance bandwidth of 0.46 THz, Fractional Bandwidth (FBW) of 61.33% for |S11| ≤ -10 dB, and a maximum directivity and realised gain of 21.8 dBi and 21.5 dBi at 0.85 THz, respectively. Within the 0.5–1 THz, the proposed optimised THz antenna design achieved an outstanding performance, including an FBW of more than 50%, excellent directivity of higher than 15.8 dBi, radiation efficiency of greater than 87%, circular polarisation, and low-profile helix turns. In short, the proposed THz metallic axial mode helix antenna with optimised truncated hollow cone ground plane design is appropriate for various THz 6G wireless applications.
Publisher
Universiti Putra Malaysia
Subject
General Earth and Planetary Sciences,General Environmental Science
Reference31 articles.
1. Acharya, I., Chauhan, A. S., & Sengupta, S. (2015). Gain enhancement of MEMS helix antenna using double substrate and fractal structures. In 2015 2nd International Conference on Electronics and Communication Systems (ICECS) (pp. 757-761). IEEE Publishing. https://doi.org/10.1109/ECS.2015.7125013 2. Akyildiz, I. F., Kak, A., & Nie, S. (2020). 6G and beyond: The future of wireless communications systems. IEEE Access, 8, 133995-134030. 3. Alibakhshikenari, M., Ali, E. M., Soruri, M., Dalarsson, M., Naser-Moghadasi, M., Virdee, B. S., Stefanovic, C., Pietrenko-dabrowska, A., Koziel, S., Szczepanski, S., & Limiti, E. (2022). A comprehensive survey on antennas on-chip based on metamaterial, metasurface, and substrate integrated waveguide principles for millimeter-waves and terahertz integrated circuits and systems. IEEE Access, 10, 3668-3692. https://doi.org/10.1109/ACCESS.2021.3140156 4. Alibakhshikenari, M., Virdee, B. S., Salekzamankhani, S., Aïssa, S., See, C. H., Soin, N., Fishlock, S. J., Althuwayb, A. A., Abd-Alhameed, R., Huynen, I. McLaughlin, J. A., Falcone, F., & Limiti, E. (2021). High-isolation antenna array using SIW and realized with a graphene layer for sub-terahertz wireless applications. Scientific Reports, 11, Article 10218. https://doi.org/10.1038/s41598-021-87712-y 5. Ansys Inc. (2021). Ansys High Frequency Structure Simulator (HFSS) Software Version 21. Ansys Inc. https://www.ansys.com/products/electronics/ansys-hfss
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