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Volume 13 | Issue 9 | Year 2026 | Article Id. IJEEE-V13I9P102 | DOI : https://doi.org/10.14445/23488379/IJEEE-V13I9P102

A Planar Multiport Multi-Circular Patch MIMO Antenna on Flexible Substrate with Defected Ground Structure for Sub-6 GHz


Fahmida Hossain, Mohd Khanapiah Bin Nor, Azlan Abd Aziz, Muhammad Ibn Ibrahimy, A.K.M. Zakir Hossain

Received Revised Accepted Published
13 May 2026 05 Aug 2026 27 Aug 2026 26 Sep 2026

Citation :

Fahmida Hossain, Mohd Khanapiah Bin Nor, Azlan Abd Aziz, Muhammad Ibn Ibrahimy, A.K.M. Zakir Hossain, "A Planar Multiport Multi-Circular Patch MIMO Antenna on Flexible Substrate with Defected Ground Structure for Sub-6 GHz," International Journal of Electrical and Electronics Engineering, vol. 13, no. 9, pp. 17-32, 2026. Crossref, https://doi.org/10.14445/23488379/IJEEE-V13I9P102

Abstract

In this proposed work, a flexible planar six-port Multiple-Input Multiple-Output (MIMO) microstrip antenna is presented that is intended for sub-6 GHz Fifth Generation (5G), wearable, and biomedical wireless applications. The antenna employs a multi-circular radiating patch topology. It is integrated with a Partial Ground Plane (PGP) and a Defected Ground Structure (DGS) techniques to achieve wideband impedance matching, reduced mutual coupling, and improved diversity characteristics. The single antenna element occupies a small space of 38.40 × 24 × 0.508 mm³, whereas the complete six-port configuration is arranged on a 165 × 76 mm² flexible Kapton platform corresponding to the dimensions of a 6.67-inch smartphone. The practical measurements demonstrate a wide bandwidth of 3.0-6.6 GHz, which includes all available sub-6 GHz 5G mid-band frequencies. The measured inter-port isolation remains greater than 35 dB and reaches approximately 58 dB for selected port combinations. The Envelope Correlation Coefficient (ECC) is maintained below 0.5, with a minimum of 1.15 ×10-5 while the Diversity Gain (DG) remains close to 10 dB. The Mean Effective Gain (MEG) is approximately 3 dB for all ports, with inter-port differences close to 0 dB. Practical line-of-sight measurements produce received-power levels ranging from -37.24 to -22.92 dBm. The antenna also preserves stable operation during on-body placement and mechanical bending. Moreover, the maximum specific absorption rate values are 0.775 W/kg averaged over 1 g of tissue and 0.335 W/kg averaged over 10 g, remaining within the applicable exposure limits.

Keywords

MIMO, Flexible antenna, Defected ground structure, Sub-6 GHz, Kapton substrate, SAR.

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