Compact ACS‐Fed IDC‐Loaded ELC Metamaterial Inspired Quad‐Port MIMO Antenna for Sub‐6GHz 5G Applications

ABSTRACT A novel compact quad‐port asymmetric coplanar strip (ACS) fed interdigital capacitor (IDC) loaded electric‐inductive capacitor (ELC) metamaterial multiple‐input–multiple‐output (MIMO) is designed. The electrically small IDC loaded ELC metamaterial inspired quad band single antenna (0.16 λ₀ × 0.1 λ₀) is explored to implement the compact MIMO configuration. The proposed MIMO antenna comprises of four port ACS‐fed IDC loaded ELC metamaterial placed orthogonal to each other with footprint of (0.29 λ₀ × 0.29 λ₀). A defected ground structure (DGS) enhanced the decoupling between multiple antennas, providing greater than 30 dB isolation across the operating bands with a spacing of 0.03 λ₀ between antennas. The equivalent circuit for the proposed MIMO antenna is developed to validate the simulated results. The good agreement between the simulated results using ANSYS Electronics simulation and the measured results on the fabricated prototype is validated. The proposed MIMO antenna operates for quad band frequencies 1.2–1.8, 2.1–2.8, 3.2–3.8, and 5.1–5.9 GHz for the application of sub‐6GHz 5G New Radio (NG) n51/n53/n78/n46 bands. The computed diversity metrics, such as the envelope correlation coefficient (ECC) < 0.01, diversity gain (DG) > 9.99 dB, total active reflection coefficient (TARC) < −10 dB, channel capacity loss (CCL) < 0.40 b/s/Hz, and the mean effective gain (MEG) < −3 dB, ensure good diversity performance.

Authors

Institutions

Publication Details

Journal
International Journal of Communication Systems
Published
2026-10-06
DOI
https://doi.org/10.1002/dac.70618
Primary Topic
Antenna Design and Analysis
Type
article
Field-Weighted Citation Impact
0.00
Controls
|||
ALL TIME
JAN
FEB
MAR
APR
MAY
JUN
JUL
AUG
SEP
OCT
article

Compact ACS‐Fed IDC‐Loaded ELC Metamaterial Inspired Quad‐Port MIMO Antenna for Sub‐6GHz 5G Applications

Harshasri Kanakavalli, R. Pandeeswari
International Journal of Communication Systems
Antenna Design and Analysis
article

Compact ACS‐Fed IDC‐Loaded ELC Metamaterial Inspired Quad‐Port MIMO Antenna for Sub‐6GHz 5G Applications

Harshasri Kanakavalli, R. Pandeeswari
article en

Abstract

ABSTRACT A novel compact quad‐port asymmetric coplanar strip (ACS) fed interdigital capacitor (IDC) loaded electric‐inductive capacitor (ELC) metamaterial multiple‐input–multiple‐output (MIMO) is designed. The electrically small IDC loaded ELC metamaterial inspired quad band single antenna (0.16 λ₀ × 0.1 λ₀) is explored to implement the compact MIMO configuration. The proposed MIMO antenna comprises of four port ACS‐fed IDC loaded ELC metamaterial placed orthogonal to each other with footprint of (0.29 λ₀ × 0.29 λ₀). A defected ground structure (DGS) enhanced the decoupling between multiple antennas, providing greater than 30 dB isolation across the operating bands with a spacing of 0.03 λ₀ between antennas. The equivalent circuit for the proposed MIMO antenna is developed to validate the simulated results. The good agreement between the simulated results using ANSYS Electronics simulation and the measured results on the fabricated prototype is validated. The proposed MIMO antenna operates for quad band frequencies 1.2–1.8, 2.1–2.8, 3.2–3.8, and 5.1–5.9 GHz for the application of sub‐6GHz 5G New Radio (NG) n51/n53/n78/n46 bands. The computed diversity metrics, such as the envelope correlation coefficient (ECC) < 0.01, diversity gain (DG) > 9.99 dB, total active reflection coefficient (TARC) < −10 dB, channel capacity loss (CCL) < 0.40 b/s/Hz, and the mean effective gain (MEG) < −3 dB, ensure good diversity performance.

International Journal of Communication SystemsVol. 39(16)
National Institute of Technology Tiruchirappalli (IN)
Openalex Percentile: Top 16%
Antenna Design and Analysis
AI Navigator

Ask Laika to Summarize, Analyze, and Connect papers live on the map.

Summarize Papers & Methodologies

Extract key findings, datasets, and comparative methods across publications.

Benchmark Rankings & Visual Analytics

Rank top research institutions, authors, funders, topics, and journals by Field-Weighted Citation Impact (FWCI) and paper volume with instant charts.

Connect Distant Disciplines

Bridge topological clusters on the map to find hidden collaborative intersections.