Nonlocal Metasurface Lens for Long-Wavelength Infrared Radiation

Fuente: arXiv
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Main Authors: De Luca, Federico, Guddala, Sriram, Cotrufo, Michele, Touma, Jimmy, Overvig, Adam, Alù, Andrea
Format: Preprint
Published: 2025
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author De Luca, Federico
Guddala, Sriram
Cotrufo, Michele
Touma, Jimmy
Overvig, Adam
Alù, Andrea
author_facet De Luca, Federico
Guddala, Sriram
Cotrufo, Michele
Touma, Jimmy
Overvig, Adam
Alù, Andrea
contents Dielectric metasurfaces are structured thin films with thickness smaller than the wavelength that aim at replacing and enhancing conventional bulk optical components by structuring local resonances across an aperture. At visible and near-infrared frequencies, titania or silicon are routinely used as substrates to realize these ultrathin devices, ideally suited for conventional nanofabrication techniques. Unfortunately, directly scaling these design and material approaches to long-wave infrared frequencies is not practical, due to challenges in the required thicknesses and the presence of phonon absorption lines. Nonlocal metasurfaces based on extended resonances with a local geometric phase offer a compelling design platform that can address these challenges. They enable ultrathin metasurfaces, as they leverage lattice resonances, while they also offer multi-functionalities and frequency-selectivity, and they can be implemented in a range of low-loss material platforms. Here, we demonstrate nonlocal metalenses based on germanium thin films on a zinc-selenide substrate, operating around 10.3μm within a deeply subwavelength device thickness of 1.45μm (14% the free-space wavelength). We showcase a novel meta-unit geometry based on a square lattice with highly isotropic dispersion features, supporting a resonant geometric phase that is highly stable in frequency, simplifying the rational design of complex metasurface operations. The introduced platform promises highly multi-functional, low-profile meta-optics with enhanced meta-unit designs, compatible with the challenging thermal spectral region for imaging and sensing applications.
format Preprint
id arxiv_https___arxiv_org_abs_2505_04856
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Nonlocal Metasurface Lens for Long-Wavelength Infrared Radiation
De Luca, Federico
Guddala, Sriram
Cotrufo, Michele
Touma, Jimmy
Overvig, Adam
Alù, Andrea
Optics
Dielectric metasurfaces are structured thin films with thickness smaller than the wavelength that aim at replacing and enhancing conventional bulk optical components by structuring local resonances across an aperture. At visible and near-infrared frequencies, titania or silicon are routinely used as substrates to realize these ultrathin devices, ideally suited for conventional nanofabrication techniques. Unfortunately, directly scaling these design and material approaches to long-wave infrared frequencies is not practical, due to challenges in the required thicknesses and the presence of phonon absorption lines. Nonlocal metasurfaces based on extended resonances with a local geometric phase offer a compelling design platform that can address these challenges. They enable ultrathin metasurfaces, as they leverage lattice resonances, while they also offer multi-functionalities and frequency-selectivity, and they can be implemented in a range of low-loss material platforms. Here, we demonstrate nonlocal metalenses based on germanium thin films on a zinc-selenide substrate, operating around 10.3μm within a deeply subwavelength device thickness of 1.45μm (14% the free-space wavelength). We showcase a novel meta-unit geometry based on a square lattice with highly isotropic dispersion features, supporting a resonant geometric phase that is highly stable in frequency, simplifying the rational design of complex metasurface operations. The introduced platform promises highly multi-functional, low-profile meta-optics with enhanced meta-unit designs, compatible with the challenging thermal spectral region for imaging and sensing applications.
title Nonlocal Metasurface Lens for Long-Wavelength Infrared Radiation
topic Optics
url https://arxiv.org/abs/2505.04856