Super-Wideband Massive MIMO
Mohamed Akrout, Volodymyr Shyianov, Faouzi Bellili, Amine Mezghani,, Robert W. Heath

TL;DR
This paper introduces a unified model for tightly-coupled massive MIMO systems, demonstrating that mutual coupling can enhance bandwidth and system capacity, challenging traditional mitigation approaches and providing new design insights.
Contribution
It develops a physically consistent modeling approach for tightly-coupled massive MIMO, revealing mutual coupling as beneficial for bandwidth and capacity, and derives optimal antenna spacing and array size.
Findings
Mutual coupling broadens operational bandwidth, enabling a 'bandwidth gain'.
Optimal antenna spacing is analytically derived for large arrays.
Mutual coupling impacts achievable rate under LoS and Rayleigh fading.
Abstract
We present a unified model for connected antenna arrays with a large number of tightly integrated (i.e., coupled) antennas in a compact space within the context of massive multiple-input multiple-output (MIMO) communication. We refer to this system as tightly-coupled massive MIMO. From an information-theoretic perspective, scaling the design of tightly-coupled massive MIMO systems in terms of the number of antennas, the operational bandwidth, and form factor was not addressed in prior art. We investigate this open research problem using a physically consistent modeling approach for far-field (FF) MIMO communication based on multi-port circuit theory. In doing so, we turn mutual coupling (MC) from a foe to a friend of MIMO systems design, thereby challenging a basic percept in antenna systems engineering that promotes MC mitigation/compensation. We show that tight MC widens the…
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Taxonomy
TopicsAntenna Design and Analysis · Microwave Engineering and Waveguides · Antenna Design and Optimization
