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Design and Optimization of a Plant-Structured MIMO Antenna for Advanced Wireless Wi-Fi 6E Systems
by
Das, Sudipta
, Mulagani, Francis
, Medarametla, Anusha Rani
, K Vasu Babu
, Mallik, Praveen
in
Acceptable noise levels
/ Antennas
/ C band
/ Channel capacity
/ Design optimization
/ Electromagnetic interactions
/ Impedance matching
/ MIMO communication
/ Mutual coupling
/ Reflectance
2026
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Design and Optimization of a Plant-Structured MIMO Antenna for Advanced Wireless Wi-Fi 6E Systems
by
Das, Sudipta
, Mulagani, Francis
, Medarametla, Anusha Rani
, K Vasu Babu
, Mallik, Praveen
in
Acceptable noise levels
/ Antennas
/ C band
/ Channel capacity
/ Design optimization
/ Electromagnetic interactions
/ Impedance matching
/ MIMO communication
/ Mutual coupling
/ Reflectance
2026
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Design and Optimization of a Plant-Structured MIMO Antenna for Advanced Wireless Wi-Fi 6E Systems
by
Das, Sudipta
, Mulagani, Francis
, Medarametla, Anusha Rani
, K Vasu Babu
, Mallik, Praveen
in
Acceptable noise levels
/ Antennas
/ C band
/ Channel capacity
/ Design optimization
/ Electromagnetic interactions
/ Impedance matching
/ MIMO communication
/ Mutual coupling
/ Reflectance
2026
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Design and Optimization of a Plant-Structured MIMO Antenna for Advanced Wireless Wi-Fi 6E Systems
Journal Article
Design and Optimization of a Plant-Structured MIMO Antenna for Advanced Wireless Wi-Fi 6E Systems
2026
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Overview
This study introduces a compact plant-structured MIMO antenna developed for modern wireless applications, including Wi-Fi 6E and IoT Systems. The design structure is implemented on substrate of FR-4 with a small footprint as 45 mm 20 mm, which makes it well suited for miniaturized wireless devices. The antenna resonates at 6.98 GHz with IBW of 1.8 GHz (5.5-7.3 GHz) effectively covering the upper C-band band for Wi-Fi 6E and IoT Systems. The achieved simulated S11 result of − 19.33 dB verifies good matching of impedance characteristics. The mutual coupling within MIMO elements is limited to − 19.89 dB (S21) demonstrating efficient isolation performance. An inter-element spacing of 6.5 mm is preserved to further minimize electromagnetic interaction. Important MIMO performance indicators such as Total Active type Reflection Coefficient (TARC), Channel type Capacity Loss (CCL), Diversity related Gain (DG) and Envelope Correlation type Coefficient (ECC) are comprehensively analyzed. All evaluated MIMO parameters remain within the standard acceptable limits confirming dependable wireless system operation. The obtained results reveal excellent diversity behavior, minimal correlation and enhanced channel capacity. Therefore, designed plant-structured MIMO system serves as a strong for compact, efficient and reliable for Wi-Fi 6E and IoT Systems.
Publisher
Sumy State University, Journal of Nano - and Electronic Physics
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