Imaging Metasurfaces based on Graphene-Loaded Slot Antennas

© 2021 OSA - The Optical Society. All rights reserved. Spectral imagers, the classic example being the color camera, are ubiquitous in everyday life. However, most such imagers rely on filter arrays that absorb light outside each spectral channel, yielding ∼1/N efficiency for an N-channel imager. Th...

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Bibliographic Details
Main Authors: Goldstein, Jordan, Englund, Dirk
Other Authors: Massachusetts Institute of Technology. Research Laboratory of Electronics
Format: Article
Language:English
Published: The Optical Society 2022
Online Access:https://hdl.handle.net/1721.1/144025
Description
Summary:© 2021 OSA - The Optical Society. All rights reserved. Spectral imagers, the classic example being the color camera, are ubiquitous in everyday life. However, most such imagers rely on filter arrays that absorb light outside each spectral channel, yielding ∼1/N efficiency for an N-channel imager. This is especially undesirable in thermal infrared (IR) wavelengths, where sensor detectivities are low. We propose an efficient and compact thermal infrared spectral imager comprising a metasurface composed of sub-wavelength-spaced, differently-Tuned slot antennas coupled to photosensitive elements. Here, we demonstrate this idea using graphene, which features a photoresponse up to thermal IR wavelengths. The combined antenna resonances yield broadband absorption in the graphene exceeding the 1/N efficiency limit. We establish a circuit model for the antennas optical properties and demonstrate consistency with full-wave simulations. We also theoretically demonstrate ∼58% free space-To-graphene photodetector coupling efficiency, averaged over the 1050 cm-1 to 1700 cm-1 wavenumber range, for a four-spectral-channel gold metasurface with a 0.883 μm by 6.0 μm antenna pitch. This research paves the way towards compact CMOS-integrable thermal IR spectral imagers.