Optical Characterization of Mineral Dust from the EAIIST Project with Digital Holography

We describe an optical approach based on Digital Holography for single-particle characterization of mineral dust and micrometric particles, focusing on the analysis of airborne particles in meltwater from Antarctic ice cores. We record the holograms formed by the superposition of the transilluminati...

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Published in:ACS Earth and Space Chemistry
Main Authors: Claudia Ravasio, Lloren?? Cremonesi, Claudio Artoni, Barbara Delmonte, Valter Maggi, Marco A. C. Potenza
Other Authors: Ravasio, Claudia, Cremonesi, Lloren??, Artoni, Claudio, Delmonte, Barbara, Maggi, Valter, Potenza, Marco A. C.
Format: Article in Journal/Newspaper
Language:English
Published: 2021
Subjects:
Online Access:https://hdl.handle.net/10278/5039612
https://doi.org/10.1021/acsearthspacechem.1c00224
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author Claudia Ravasio
Lloren?? Cremonesi
Claudio Artoni
Barbara Delmonte
Valter Maggi
Marco A. C. Potenza
author2 Ravasio, Claudia
Cremonesi, Lloren??
Artoni, Claudio
Delmonte, Barbara
Maggi, Valter
Potenza, Marco A. C.
author_facet Claudia Ravasio
Lloren?? Cremonesi
Claudio Artoni
Barbara Delmonte
Valter Maggi
Marco A. C. Potenza
author_sort Claudia Ravasio
collection Università Ca’ Foscari Venezia: ARCA (Archivio Istituzionale della Ricerca)
container_issue 10
container_start_page 2855
container_title ACS Earth and Space Chemistry
container_volume 5
description We describe an optical approach based on Digital Holography for single-particle characterization of mineral dust and micrometric particles, focusing on the analysis of airborne particles in meltwater from Antarctic ice cores. We record the holograms formed by the superposition of the transilluminating reference beam and the waves scattered by single particles. Taking a cue from recent approaches in the field and holography methods, we process the holograms to recover both optical and morphological properties of single dust grains. As a considerable advantage over traditional light-scattering-based methods, holograms give the extinction cross section of each particle and, by numerically reconstructing the wavefront propagation, an unambiguous image of each particle whereby we derive its cross-sectional shape and size. Measurements have been carried out on samples collected from the recent EAIIST (East Antarctic International Ice Sheet Traverse) project, some of which show evidence of volcanic events. The vast majority of the detected particles show significant deviations from the isometric shape, as confirmed by both image reconstruction and extinction cross section analysis. By our analysis, we observe that experimental data have an extinction cross section up to 3 times lower than that of spherical particles with the same volume. Therefore, these deviations have an appreciable impact on the aerosol contribution to radiative forcing: retrieving particle shape may improve the modeling of the radiative properties of mineral dust and reduce the associated uncertainties.
format Article in Journal/Newspaper
genre Antarc*
Antarctic
ice core
Ice Sheet
genre_facet Antarc*
Antarctic
ice core
Ice Sheet
geographic Antarctic
geographic_facet Antarctic
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institution Open Polar
language English
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op_doi https://doi.org/10.1021/acsearthspacechem.1c00224
op_relation info:eu-repo/semantics/altIdentifier/wos/WOS:000714116400028
volume:5
issue:10
firstpage:2855
lastpage:2864
numberofpages:10
journal:ACS EARTH AND SPACE CHEMISTRY
https://hdl.handle.net/10278/5039612
doi:10.1021/acsearthspacechem.1c00224
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spelling ftuniveneziairis:oai:iris.unive.it:10278/5039612 2025-01-16T19:10:40+00:00 Optical Characterization of Mineral Dust from the EAIIST Project with Digital Holography Claudia Ravasio Lloren?? Cremonesi Claudio Artoni Barbara Delmonte Valter Maggi Marco A. C. Potenza Ravasio, Claudia Cremonesi, Lloren?? Artoni, Claudio Delmonte, Barbara Maggi, Valter Potenza, Marco A. C. 2021 https://hdl.handle.net/10278/5039612 https://doi.org/10.1021/acsearthspacechem.1c00224 eng eng info:eu-repo/semantics/altIdentifier/wos/WOS:000714116400028 volume:5 issue:10 firstpage:2855 lastpage:2864 numberofpages:10 journal:ACS EARTH AND SPACE CHEMISTRY https://hdl.handle.net/10278/5039612 doi:10.1021/acsearthspacechem.1c00224 info:eu-repo/semantics/altIdentifier/scopus/2-s2.0-85115240951 Digital Holography Mineral dust Aerosol Ice core Optical properties Settore GEO/04 - Geografia Fisica e Geomorfologia info:eu-repo/semantics/article 2021 ftuniveneziairis https://doi.org/10.1021/acsearthspacechem.1c00224 2024-03-21T18:22:27Z We describe an optical approach based on Digital Holography for single-particle characterization of mineral dust and micrometric particles, focusing on the analysis of airborne particles in meltwater from Antarctic ice cores. We record the holograms formed by the superposition of the transilluminating reference beam and the waves scattered by single particles. Taking a cue from recent approaches in the field and holography methods, we process the holograms to recover both optical and morphological properties of single dust grains. As a considerable advantage over traditional light-scattering-based methods, holograms give the extinction cross section of each particle and, by numerically reconstructing the wavefront propagation, an unambiguous image of each particle whereby we derive its cross-sectional shape and size. Measurements have been carried out on samples collected from the recent EAIIST (East Antarctic International Ice Sheet Traverse) project, some of which show evidence of volcanic events. The vast majority of the detected particles show significant deviations from the isometric shape, as confirmed by both image reconstruction and extinction cross section analysis. By our analysis, we observe that experimental data have an extinction cross section up to 3 times lower than that of spherical particles with the same volume. Therefore, these deviations have an appreciable impact on the aerosol contribution to radiative forcing: retrieving particle shape may improve the modeling of the radiative properties of mineral dust and reduce the associated uncertainties. Article in Journal/Newspaper Antarc* Antarctic ice core Ice Sheet Università Ca’ Foscari Venezia: ARCA (Archivio Istituzionale della Ricerca) Antarctic ACS Earth and Space Chemistry 5 10 2855 2864
spellingShingle Digital Holography
Mineral dust
Aerosol
Ice core
Optical properties
Settore GEO/04 - Geografia Fisica e Geomorfologia
Claudia Ravasio
Lloren?? Cremonesi
Claudio Artoni
Barbara Delmonte
Valter Maggi
Marco A. C. Potenza
Optical Characterization of Mineral Dust from the EAIIST Project with Digital Holography
title Optical Characterization of Mineral Dust from the EAIIST Project with Digital Holography
title_full Optical Characterization of Mineral Dust from the EAIIST Project with Digital Holography
title_fullStr Optical Characterization of Mineral Dust from the EAIIST Project with Digital Holography
title_full_unstemmed Optical Characterization of Mineral Dust from the EAIIST Project with Digital Holography
title_short Optical Characterization of Mineral Dust from the EAIIST Project with Digital Holography
title_sort optical characterization of mineral dust from the eaiist project with digital holography
topic Digital Holography
Mineral dust
Aerosol
Ice core
Optical properties
Settore GEO/04 - Geografia Fisica e Geomorfologia
topic_facet Digital Holography
Mineral dust
Aerosol
Ice core
Optical properties
Settore GEO/04 - Geografia Fisica e Geomorfologia
url https://hdl.handle.net/10278/5039612
https://doi.org/10.1021/acsearthspacechem.1c00224