High-directivity multi-level beam switching with single-gate tunable metasurfaces based on graphene
Juho Park, Ju Young Kim, Sunghyun Nam, and Min Seok Jang

TL;DR
This paper introduces a graphene-based reconfigurable metasurface capable of multi-level beam switching with high directivity and efficiency, advancing active beam steering technology for nanoscale applications.
Contribution
It presents a novel multi-level beam-switching dielectric metasurface with a single-gate graphene tuning mechanism, achieving high directivity and diffraction efficiency at mid-infrared wavelengths.
Findings
Two-level switching with >95% directivity
Near 50% diffraction efficiency at 8 μm
Design of multi-level (3- and 4-level) beam switching devices
Abstract
The growing demand for ultra-fast telecommunications, autonomous driving, and futuristic technologies highlights the crucial role of active beam steering at the nanoscale. This is essential for applications like LiDAR, beam-forming, and holographic displays, especially as devices reduce in form-factor. Although device with active beam switching capability is a potential candidate for realizing those applications, there have been only a few works to realize beam switching in reconfigurable metasurfaces with active tuning materials. In this paper, we theoretically present a multi-level beam-switching dielectric metasurface with a graphene layer for active tuning, addressing challenges associated with achieving high directivity and diffraction efficiency, and doing so while using a single-gate setup. For two-level switching, the directivities reached above 95%, and the diffraction…
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Taxonomy
TopicsMetamaterials and Metasurfaces Applications · Energy Harvesting in Wireless Networks · Advanced Antenna and Metasurface Technologies
