Comparative Study of Rectangular and Circular Microstrip Patch Antenna Using Duriod Substrate for 5g Application

Authors

  • Ebisemiju Gabriel Adewale
  • Anie Nicolas Oliseloke
  • Ajao Olatunji Samson
  • Olabisi Olusegun
    Department of Science and Laboratory Technology, Ladoke Akintola University of Technology, Ogbomoso

Keywords:

Microstrip Patch Antenna (MPA), Rectangular and Circular Antennas, RT/Duroid 5880 Substrate, 5G Communication (3.5 GHz), Antenna Performance (Return Loss), VSWR, Gain, Bandwidth

Abstract

Microstrip patch antennas (MPAs) are widely employed in wireless communication systems because of their low profile, lightweight structure, low fabrication cost, and ease of integration with planar circuits. However, selecting the most suitable patch geometry remains a major design challenge, as antenna shape significantly influences impedance matching, bandwidth, gain, and radiation characteristics. Despite the extensive use of rectangular and circular microstrip patch antennas, limited studies have provided a comprehensive comparison of their performance using RT/Duroid 5880 substrate at the 3.5 GHz 5G band. This study addresses this gap by comparatively evaluating rectangular and circular microstrip patch antennas to identify the geometry best suited for 5G applications. The antennas were designed and simulated using the High Frequency Structure Simulator (HFSS), and their performance was assessed based on return loss (S11), voltage standing wave ratio (VSWR), realized gain, bandwidth, and directivity. Both antenna geometries resonated successfully at 3.5 GHz; however, the rectangular antenna exhibited superior overall performance, achieving a lower return loss of −28.85 dB, lower VSWR of 0.6297, higher realized gain of 7.8059 dB, and greater directivity of 2.5882 dB compared to the circular antenna, which recorded −24.89 dB return loss, 0.999 VSWR, 7.1306 dB gain, and 2.4898 dB directivity. Although the circular antenna provided a slightly wider bandwidth (200 MHz) than the rectangular antenna (188 MHz), the results demonstrate that the rectangular microstrip patch antenna offers superior impedance matching and radiation performance, making it a more suitable candidate for efficient and reliable sub-6 GHz 5G wireless communication systems.

Dimensions

Alshortan, H. H., Alogla, A., Eleiwa, M. A. H., & Khan, M. I. (2021). Low-cost high gain 8 × 8 planar array antenna for 5G applications at 28 GHz. Engineering, Technology & Applied Science Research, 11(6), 7964–7967. https://doi.org/10.48084/etasr.4609

Al-Yasir, Y. I. A., Parchin, N. O., Fares, M. N., Abdulkhaleq, A., Sajedin, M., Elfergani, I. T. E., Rodriguez, J., & Abd-Alhameed, R. (2020). New high-gain differential-fed dual-polarized filtering microstrip antenna for 5G applications. In Proceedings of the 14th European Conference on Antennas and Propagation (EuCAP). https://doi.org/10.23919/EuCAP48036.2020.9135327

Balanis, C. A. (2016). Antenna theory: Analysis and design (4th ed.). John Wiley & Sons.

Colaco, J., & Lohani, R. (2020). Design and implementation of microstrip patch antenna for 5G applications. In Proceedings of the International Conference on Electrical, Communication and Computer Engineering (pp. 682–685). https://doi.org/10.1109/ICECCE49384.2020.9179263

Djouimaa, A., & Bencherif, K. (2024). Design of a compact circular microstrip patch antenna for 5G applications. Engineering, Technology & Applied Science Research, 14(4), 16020–16024.

El-Hakim, H., & Mohamed, H. A. (2023). Synthesis of a multiband microstrip patch antenna for 5G wireless communications. Journal of Infrared, Millimeter, and Terahertz Waves, 44, 752–768.

Garg, R., Bhartia, P., Bahl, I., & Ittipiboon, A. (2001). Microstrip antenna design handbook. Artech House.

Kyama, R., Sanapureddy, S. D., Gyadapaka, J., & Khasim, K. N. V. (2023). Design and analysis of microstrip rectangular patch antenna for 5G applications. E3S Web of Conferences, 391, 01113. https://doi.org/10.1051/e3sconf/202339101113

Li, Y. (2023). A microstrip patch antenna for 5G mobile communications. Journal of Physics: Conference Series, 2580(1), 012063. https://doi.org/10.1088/1742-6596/2580/1/012063

Ngoc, T. T. B. (2020). Design of microstrip patch antenna for 5G wireless applications. Journal of Computational Vision and Visualization, 20(2), 53–60.

Olabisi, O., Aremu, O. A., Ajeigbe, O. S., Ajao, S. O., & Adebisi, S. S. (2024). Performance evaluation of rectangular microstrip patch antenna using different substrate materials for 5G applications. International Journal of Research Publication and Reviews, 5(8), 3108–3116.

Olabisi, O., Ebisemiju, A. G., & Eleyele, D. E. (2025). Design and optimization of rectangular microstrip patch antenna using Duroid substrate for 5G application in Nigeria. Iconic Research and Engineering Journals, 8(7), 426–430.

Saeed, M. A., & Nwajana, A. O. (2026). A wideband narrow beam 1 × 6 linear antenna array for automotive radar and 5G millimetre-wave applications. arXiv.

Sowe, M., Konditi, D., & Langat, K. (2022). A compact high-gain microstrip patch antenna with improved bandwidth for 5G applications. International Journal of Electrical and Electronics Research, 10, 196–201. https://doi.org/10.37391/IJEER.100225

Swamy, B., Tavade, C. M., & Singh, K. (2021). Design of circular microstrip patch antenna for WLAN application. Journal of Analog and Digital Communications, 6(2), 15–21. https://doi.org/10.46610/JoADC.2021.v06i02.003

Teresa, P. M., & Umamaheswari, G. (2022). Compact slotted microstrip antenna for 5G applications operating at 28 GHz. IETE Journal of Research, 68(5), 3778–3785. https://doi.org/10.1080/03772063.2020.1779620

Published

2026-09-01

How to Cite

Adewale, E. G., Oliseloke, A. N., Samson, A. O., & Olusegun, O. (2026). Comparative Study of Rectangular and Circular Microstrip Patch Antenna Using Duriod Substrate for 5g Application. Nigerian Journal of Physics, 35(S), 109-118. https://doi.org/10.62292/njp.v35(s).2026.715

How to Cite

Adewale, E. G., Oliseloke, A. N., Samson, A. O., & Olusegun, O. (2026). Comparative Study of Rectangular and Circular Microstrip Patch Antenna Using Duriod Substrate for 5g Application. Nigerian Journal of Physics, 35(S), 109-118. https://doi.org/10.62292/njp.v35(s).2026.715