4.7 Article

Tunable Plasmonic Metasurfaces for Optical Phased Arrays

Publisher

IEEE-INST ELECTRICAL ELECTRONICS ENGINEERS INC
DOI: 10.1109/JSTQE.2020.2991386

Keywords

Antenna arrays; antenna radiation patterns; beam steering; dipole antennas; metal-insulator structures; MOS capacitors; optical phase shifters; phased arrays; plasmons; reflectarrays

Funding

  1. NSERC
  2. Huawei Technologies Canada

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This study introduces a novel plasmonic pixel design for beam steering in LIDAR, with simulations predicting the control of reflection coefficient phase. The research also discusses the optical response mechanism, the impact of connectors, and strategies to maximize reflection coefficient magnitude and achieve dual-band operation.
Controlling the phase and amplitude of light emitted by the elements (i.e., pixels) of an optical phased array is of paramount importance to realizing dynamic beam steering for LIDAR applications. In this paper, we propose a plasmonic pixel composed of a metallic nanoantenna covered by a thin oxide layer, and a conductive oxide, e.g., ITO, for use in a reflectarray metasurface. By considering voltage biasing of the nanoantenna via metallic connectors, and exploiting the carrier refraction effect in the metal-oxide-semiconductor capacitor in the accumulation and depletion regions, our simulations predict control of the reflection coefficient phase over a range >330 degrees with a nearly constant magnitude. We discuss the physical mechanism underlying the optical response, the effect of the connectors, and propose strategies to maximize the magnitude of the reflection coefficient and to achieve dual-band operation. The suitability of our plasmonic pixel design for beam steering in LIDAR is demonstrated via 3D-FDTD simulations.

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