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Unique Hyperspectral Response Design in High-Speed Photodetectors Enabled by Periodic Surface Textures

Engineered spectral response in photodetectors combined with advanced signal processing and deep learning-based image reconstruction enables widespread applications of hyperspectral imaging. These advancements in spectral imaging eliminate the need for complex filters and dispersion lenses, benefiti...

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Autores principales: Ahamed, Ahasan, Rawat, Amita, Mayet, Ahmed S., McPhillips, Lisa N, Islam, M Saif
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Journal Experts 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10371137/
https://www.ncbi.nlm.nih.gov/pubmed/37503247
http://dx.doi.org/10.21203/rs.3.rs-3140578/v1
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author Ahamed, Ahasan
Rawat, Amita
Mayet, Ahmed S.
McPhillips, Lisa N
Islam, M Saif
author_facet Ahamed, Ahasan
Rawat, Amita
Mayet, Ahmed S.
McPhillips, Lisa N
Islam, M Saif
author_sort Ahamed, Ahasan
collection PubMed
description Engineered spectral response in photodetectors combined with advanced signal processing and deep learning-based image reconstruction enables widespread applications of hyperspectral imaging. These advancements in spectral imaging eliminate the need for complex filters and dispersion lenses, benefiting various fields such as remote sensing, astronomy, agriculture, healthcare, forensics, food quality assessment, environmental monitoring, and cultural heritage preservation. We present a spectral response design method using photon-trapping surface textures (PTSTs) to enable system miniaturization by eliminating the need for external diffraction optics and employing detector-only spectral sensors. We additionally demonstrate the fabrication of cost-effective, high-performance silicon photodetectors with unique spectral responses by integrating PTSTs. These CMOS-compatible photodetectors are ultra-fast, highly sensitive, and suitable for wideband multi/hyperspectral imaging systems. Our investigation uncovers a prominent linear correlation between the PTST periods and the peak coupling wavelengths while observing a weaker relationship with the PTST diameters. Furthermore, we establish a significant association between inter-PTST spacing and wave propagation patterns. In a proof-of-principle demonstration, we effectively employ these photodetectors with distinct spectral responses to capture visible and near-infrared wavelengths for multispectral imaging. These findings support the feasibility of integrating high-performance on-chip spectrometers, offering compact form factors, extensive applicability, and real-time data acquisition and manipulation capabilities.
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spelling pubmed-103711372023-07-27 Unique Hyperspectral Response Design in High-Speed Photodetectors Enabled by Periodic Surface Textures Ahamed, Ahasan Rawat, Amita Mayet, Ahmed S. McPhillips, Lisa N Islam, M Saif Res Sq Article Engineered spectral response in photodetectors combined with advanced signal processing and deep learning-based image reconstruction enables widespread applications of hyperspectral imaging. These advancements in spectral imaging eliminate the need for complex filters and dispersion lenses, benefiting various fields such as remote sensing, astronomy, agriculture, healthcare, forensics, food quality assessment, environmental monitoring, and cultural heritage preservation. We present a spectral response design method using photon-trapping surface textures (PTSTs) to enable system miniaturization by eliminating the need for external diffraction optics and employing detector-only spectral sensors. We additionally demonstrate the fabrication of cost-effective, high-performance silicon photodetectors with unique spectral responses by integrating PTSTs. These CMOS-compatible photodetectors are ultra-fast, highly sensitive, and suitable for wideband multi/hyperspectral imaging systems. Our investigation uncovers a prominent linear correlation between the PTST periods and the peak coupling wavelengths while observing a weaker relationship with the PTST diameters. Furthermore, we establish a significant association between inter-PTST spacing and wave propagation patterns. In a proof-of-principle demonstration, we effectively employ these photodetectors with distinct spectral responses to capture visible and near-infrared wavelengths for multispectral imaging. These findings support the feasibility of integrating high-performance on-chip spectrometers, offering compact form factors, extensive applicability, and real-time data acquisition and manipulation capabilities. American Journal Experts 2023-07-21 /pmc/articles/PMC10371137/ /pubmed/37503247 http://dx.doi.org/10.21203/rs.3.rs-3140578/v1 Text en https://creativecommons.org/licenses/by/4.0/This work is licensed under a Creative Commons Attribution 4.0 International License (https://creativecommons.org/licenses/by/4.0/) , which allows reusers to distribute, remix, adapt, and build upon the material in any medium or format, so long as attribution is given to the creator. The license allows for commercial use.
spellingShingle Article
Ahamed, Ahasan
Rawat, Amita
Mayet, Ahmed S.
McPhillips, Lisa N
Islam, M Saif
Unique Hyperspectral Response Design in High-Speed Photodetectors Enabled by Periodic Surface Textures
title Unique Hyperspectral Response Design in High-Speed Photodetectors Enabled by Periodic Surface Textures
title_full Unique Hyperspectral Response Design in High-Speed Photodetectors Enabled by Periodic Surface Textures
title_fullStr Unique Hyperspectral Response Design in High-Speed Photodetectors Enabled by Periodic Surface Textures
title_full_unstemmed Unique Hyperspectral Response Design in High-Speed Photodetectors Enabled by Periodic Surface Textures
title_short Unique Hyperspectral Response Design in High-Speed Photodetectors Enabled by Periodic Surface Textures
title_sort unique hyperspectral response design in high-speed photodetectors enabled by periodic surface textures
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10371137/
https://www.ncbi.nlm.nih.gov/pubmed/37503247
http://dx.doi.org/10.21203/rs.3.rs-3140578/v1
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