Polarization-sensitive GeSn Mid-Infrared Membrane Photodetectors with Integrated Plasmonic Metasurface

Fuente: arXiv
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Autores principales: Cai, Ziqiang, Lemieux-Leduc, Cédric, Atalla, Mahmoud R. M., Lu, Luo, Daligou, Gérard, Assali, Simone, Moutanabbir, Oussama
Formato: Preprint
Publicado: 2025
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author Cai, Ziqiang
Lemieux-Leduc, Cédric
Atalla, Mahmoud R. M.
Lu, Luo
Daligou, Gérard
Assali, Simone
Moutanabbir, Oussama
author_facet Cai, Ziqiang
Lemieux-Leduc, Cédric
Atalla, Mahmoud R. M.
Lu, Luo
Daligou, Gérard
Assali, Simone
Moutanabbir, Oussama
contents Germanium-Tin (GeSn) semiconductors are promising for mid-infrared optoelectronics owing to their silicon compatibility, tunable bandgap, and potential for room-temperature operation. Released GeSn membranes provide an additional degree of freedom to extend the operation wavelength through epitaxial strain relaxation, while their transferability expands design flexibility. On the other hand, metasurfaces have become an effective strategy to engineer light--matter interaction, and their integration with photodetectors can enhance performance and introduce new functionalities. Here, we demonstrate a mid-infrared photodetector consisting of a transfer-printed Ge$_{0.89}$Sn$_{0.11}$ membrane integrated with an Au plasmonic metasurface. The photodetector exhibits a wavelength cutoff exceeding 3.0~$μ$m with nearly fourfold increase in responsivity at 2.5~$μ$m as compared to unreleased films, attributed to Fabry--Pérot resonance. Furthermore, the integration with an anisotropic metasurface yields detectors with strong polarization sensitivity, achieving a measured contrast ratio of $\sim$4:1 between orthogonal polarizations. Moreover, the operation wavelength of the photodetector can be selectively tuned by varying the geometric scale of the metasurface. The experimental results show excellent agreement with simulations, confirming the effectiveness and versatility of this integrated metasurface--membrane design.
format Preprint
id arxiv_https___arxiv_org_abs_2511_00771
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Polarization-sensitive GeSn Mid-Infrared Membrane Photodetectors with Integrated Plasmonic Metasurface
Cai, Ziqiang
Lemieux-Leduc, Cédric
Atalla, Mahmoud R. M.
Lu, Luo
Daligou, Gérard
Assali, Simone
Moutanabbir, Oussama
Applied Physics
Optics
Germanium-Tin (GeSn) semiconductors are promising for mid-infrared optoelectronics owing to their silicon compatibility, tunable bandgap, and potential for room-temperature operation. Released GeSn membranes provide an additional degree of freedom to extend the operation wavelength through epitaxial strain relaxation, while their transferability expands design flexibility. On the other hand, metasurfaces have become an effective strategy to engineer light--matter interaction, and their integration with photodetectors can enhance performance and introduce new functionalities. Here, we demonstrate a mid-infrared photodetector consisting of a transfer-printed Ge$_{0.89}$Sn$_{0.11}$ membrane integrated with an Au plasmonic metasurface. The photodetector exhibits a wavelength cutoff exceeding 3.0~$μ$m with nearly fourfold increase in responsivity at 2.5~$μ$m as compared to unreleased films, attributed to Fabry--Pérot resonance. Furthermore, the integration with an anisotropic metasurface yields detectors with strong polarization sensitivity, achieving a measured contrast ratio of $\sim$4:1 between orthogonal polarizations. Moreover, the operation wavelength of the photodetector can be selectively tuned by varying the geometric scale of the metasurface. The experimental results show excellent agreement with simulations, confirming the effectiveness and versatility of this integrated metasurface--membrane design.
title Polarization-sensitive GeSn Mid-Infrared Membrane Photodetectors with Integrated Plasmonic Metasurface
topic Applied Physics
Optics
url https://arxiv.org/abs/2511.00771