DEVELOPMENT AND ANALYSIS OF METAMATERIAL BASED ANTENNAS FOR HIGH-FREQUENCY APPLICATIONS

Authors

  • Sardor Bakhtiyorov Master’s Student, Department of Telecommunication Engineering, Samarkand Branch of the Tashkent University of Information Technologies named after Muhammad al-Khwarizmi.
  • Khotam Mirzokulov Head of the Department of Telecommunication Engineering, Associate Professor at the Samarkand Branch of Tashkent University of Information Technologies named after Muhammad al-Khwarizmi

Keywords:

Materials, Antenna, Metamaterial, Patch Antenna, Simulation Model

Abstract

This paper explores the potential application of metamaterials in the design of high-frequency antennas. It highlights how the unique electromagnetic properties of metamaterials—particularly their ability to exhibit negative permittivity and permeability—can significantly enhance antenna performance. In this study, antennas were designed based on metamaterial structures of various geometrical configurations, and their performance characteristics, including frequency range, directivity, and efficiency, were analyzed through simulation. Furthermore, the fabricated antennas were tested under laboratory conditions, and the experimental results were compared with theoretical modeling. The findings confirm that metamaterial-based antennas hold strong promise for implementation in high-frequency communication systems.

References

‘zbekiston Respublikasi Prezidenti. (2022). Ilm-fan va innovatsiyalarni rivojlantirish bo‘yicha yig‘ilishdagi nutq. 4 avgust 2022 yil.

O‘zbekiston Respublikasi Prezidenti. (2020). “Raqamli O‘zbekiston – 2030” strategiyasi to‘g‘risida Farmon. PF–6079, 5 oktabr 2020 yil.

Veselago V. G. The Electrodynamics of Substances with Simultaneously Negative Values of ε and μ. – Soviet Physics Uspekhi, 1968.

Engheta N., Ziolkowski R. W. Metamaterials: Physics and Engineering Explorations. – Wiley-IEEE Press, 2006.

Smith D. R., Kroll N. Negative Refractive Index in Left-Handed Materials. – Physical Review Letters, 2000.

Caloz C., Itoh T. Electromagnetic Metamaterials: Transmission Line Theory and Microwave Applications. – Wiley, 2005.

Holloway C. L. et al. An Overview of the Theory and Applications of Metasurfaces. – IEEE Antennas and Propagation Magazine, 2012.

Alu A., Engheta N. Achieving Transparency with Plasmonic and Metamaterial Coatings. – Physical Review E, 2005.

Pendry J. B. Negative Refraction Makes a Perfect Lens. – Physical Review Letters, 2000.

Balanis C. A. Antenna Theory: Analysis and Design. – 4th ed. – Wiley, 2016.

Pozar D. M. Microwave Engineering. – Wiley, 2011.

Lee J. Y., Lee J. H. Design of Metamaterial-Based Antennas for High-Frequency Applications. – IEEE Transactions on Antennas and Propagation, 2014.

Werner D. H., Kwon D. H. Transformation Electromagnetics and Metamaterials. – Springer, 2014.

Rahman, M. M., Islam, M. S., Islam, M. T., Al-Bawri, S. S. & Yong, W. H. Metamaterial-based compact antenna with defected ground structure for 5G and beyond. Comput. Mater. Contin 72, 2383–2399 (2022).

Musaed, A. A., Al-Bawri, S. S., Islam, M. T., Al-Gburi, A. J. A. & Singh, M. J. Tunable compact metamaterial-based double-negative/ near-zero index resonator for 6G terahertz wireless applications. Materials 15(16), 5608 (2022).

Tariq, S., Naqvi, S. I., Hussain, N. & Amin, Y. A metasurface-based MIMO antenna for 5G millimeter-wave applications. IEEE Access 9, 51805–51817 (2021).

Musaed, A., Al-Bawri, S., Islam, M. & Alkadri, W. Parametric analysis of epsilon-negative (ENG) and near zero refractive index (NZRI) characteristics of extraordinary metamaterial for 5g millimetre-wave applications. IOP Conf. Ser.: Earth Environ. Sci. 1167(1), 012040 (2023).

Pérez, J. R. et al. Experimental analysis of concentrated versus distributed massive MIMO in an indoor cell at 3.5 GHz. Electronics 10(14), 1646 (2021).

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Published

2025-06-30

How to Cite

Bakhtiyorov, S., & Mirzokulov , K. (2025). DEVELOPMENT AND ANALYSIS OF METAMATERIAL BASED ANTENNAS FOR HIGH-FREQUENCY APPLICATIONS. International Bulletin of Engineering and Technology, 5(6), 250–259. Retrieved from https://internationalbulletins.com/intjour/index.php/ibet/article/view/2086