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Remote Nanoscopy with Infrared Elastic Hyperspectral Lidar

Monitoring insects of different species to understand the factors affecting their diversity and decline is a major challenge. Laser remote sensing and spectroscopy offer promising novel solutions to this. Coherent scattering from thin wing membranes also known as wing interference patterns (WIPs) ha...

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Autores principales: Müller, Lauro, Li, Meng, Månefjord, Hampus, Salvador, Jacobo, Reistad, Nina, Hernandez, Julio, Kirkeby, Carsten, Runemark, Anna, Brydegaard, Mikkel
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10214245/
https://www.ncbi.nlm.nih.gov/pubmed/36965063
http://dx.doi.org/10.1002/advs.202207110
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author Müller, Lauro
Li, Meng
Månefjord, Hampus
Salvador, Jacobo
Reistad, Nina
Hernandez, Julio
Kirkeby, Carsten
Runemark, Anna
Brydegaard, Mikkel
author_facet Müller, Lauro
Li, Meng
Månefjord, Hampus
Salvador, Jacobo
Reistad, Nina
Hernandez, Julio
Kirkeby, Carsten
Runemark, Anna
Brydegaard, Mikkel
author_sort Müller, Lauro
collection PubMed
description Monitoring insects of different species to understand the factors affecting their diversity and decline is a major challenge. Laser remote sensing and spectroscopy offer promising novel solutions to this. Coherent scattering from thin wing membranes also known as wing interference patterns (WIPs) have recently been demonstrated to be species specific. The colors of WIPs arise due to unique fringy spectra, which can be retrieved over long distances. To demonstrate this, a new concept of infrared (950–1650 nm) hyperspectral lidar with 64 spectral bands based on a supercontinuum light source using ray‐tracing and 3D printing is developed. A lidar with an unprecedented number of spectral channels, high signal‐to‐noise ratio, and spatio‐temporal resolution enabling detection of free‐flying insects and their wingbeats. As proof of principle, coherent scatter from a damselfly wing at 87 m distance without averaging (4 ms recording) is retrieved. The fringed signal properties are used to determine an effective wing membrane thickness of 1412 nm with ±4 nm precision matching laboratory recordings of the same wing. Similar signals from free flying insects (2 ms recording) are later recorded. The accuracy and the method's potential are discussed to discriminate species by capturing coherent features from free‐flying insects.
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spelling pubmed-102142452023-05-27 Remote Nanoscopy with Infrared Elastic Hyperspectral Lidar Müller, Lauro Li, Meng Månefjord, Hampus Salvador, Jacobo Reistad, Nina Hernandez, Julio Kirkeby, Carsten Runemark, Anna Brydegaard, Mikkel Adv Sci (Weinh) Research Articles Monitoring insects of different species to understand the factors affecting their diversity and decline is a major challenge. Laser remote sensing and spectroscopy offer promising novel solutions to this. Coherent scattering from thin wing membranes also known as wing interference patterns (WIPs) have recently been demonstrated to be species specific. The colors of WIPs arise due to unique fringy spectra, which can be retrieved over long distances. To demonstrate this, a new concept of infrared (950–1650 nm) hyperspectral lidar with 64 spectral bands based on a supercontinuum light source using ray‐tracing and 3D printing is developed. A lidar with an unprecedented number of spectral channels, high signal‐to‐noise ratio, and spatio‐temporal resolution enabling detection of free‐flying insects and their wingbeats. As proof of principle, coherent scatter from a damselfly wing at 87 m distance without averaging (4 ms recording) is retrieved. The fringed signal properties are used to determine an effective wing membrane thickness of 1412 nm with ±4 nm precision matching laboratory recordings of the same wing. Similar signals from free flying insects (2 ms recording) are later recorded. The accuracy and the method's potential are discussed to discriminate species by capturing coherent features from free‐flying insects. John Wiley and Sons Inc. 2023-03-25 /pmc/articles/PMC10214245/ /pubmed/36965063 http://dx.doi.org/10.1002/advs.202207110 Text en © 2023 The Authors. Advanced Science published by Wiley‐VCH GmbH https://creativecommons.org/licenses/by/4.0/This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Articles
Müller, Lauro
Li, Meng
Månefjord, Hampus
Salvador, Jacobo
Reistad, Nina
Hernandez, Julio
Kirkeby, Carsten
Runemark, Anna
Brydegaard, Mikkel
Remote Nanoscopy with Infrared Elastic Hyperspectral Lidar
title Remote Nanoscopy with Infrared Elastic Hyperspectral Lidar
title_full Remote Nanoscopy with Infrared Elastic Hyperspectral Lidar
title_fullStr Remote Nanoscopy with Infrared Elastic Hyperspectral Lidar
title_full_unstemmed Remote Nanoscopy with Infrared Elastic Hyperspectral Lidar
title_short Remote Nanoscopy with Infrared Elastic Hyperspectral Lidar
title_sort remote nanoscopy with infrared elastic hyperspectral lidar
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10214245/
https://www.ncbi.nlm.nih.gov/pubmed/36965063
http://dx.doi.org/10.1002/advs.202207110
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