Eliminating nearfield coupling in dense high quality factor phase gradient metasurfaces
Samuel Ameyaw, Lin Lin, Bo Zhao, Hamish Carr Delgado, Mark Lawrence

TL;DR
This paper introduces a method to eliminate near-field coupling in high-Q phase gradient metasurfaces, enabling dense, high-resolution wavefront control without the usual trade-offs, and demonstrating high efficiency beam steering and splitting.
Contribution
The authors develop a zero-coupling regime to suppress near-field interactions in high-Q metasurfaces, allowing for dense pixel arrangements and improved wavefront shaping capabilities.
Findings
Achieved beam-splitting at ±53° with over 90% efficiency
Demonstrated beam steering at 33° with high Q-factors
Validated zero-coupling regime through experimental sign flip in angular dispersion
Abstract
High Q phase gradient metasurfaces are becoming promising elements for revolutionizing light manipulation but near-field coupling typically forces a trade-off between quality factor and resolution. Here, we show a strategy for not just reducing but eliminating coupling-based nonlocal effects in wave shaping metasurfaces composed of meta-pixels with arbitrarily high Q arranged with sub-diffraction spatial resolution. By working at a zero-coupling regime introduced by the interference between enhanced longitudinal and transverse electric fields, the tradeoff between Q and resolution no longer exists. Exploiting for wave shaping the ability to fully suppress coupling between high Q meta-atoms, we numerically show structurally uniform devices that produce beam-splitting to angles of and beam-steering to an angle of with diffraction efficiencies over 90% via refractive index…
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Taxonomy
TopicsAdvanced Antenna and Metasurface Technologies · Metamaterials and Metasurfaces Applications · Antenna Design and Analysis
