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Beyond the Ångström Exponent: Probing Additional Information in Spectral Curvature and Variability of In Situ Aerosol Hyperspectral (0.3–0.7 μm) Optical Properties

Ångström exponents (α) allow reconstruction of aerosol optical spectra over a broad range of wavelengths from measurements at two or more wavelengths. Hyperspectral measurements of atmospheric aerosols provide opportunities to probe measured spectra for information inaccessible from only a few wavel...

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Autores principales: Jordan, Carolyn E., Anderson, Bruce E., Barrick, John D., Blum, Dani, Brunke, Kathleen, Chai, Jiajue, Chen, Gao, Crosbie, Ewan C., Dibb, Jack E., Dillner, Ann M., Gargulinski, Emily, Hudgins, Charles H., Joyce, Emily, Kaspari, Jackson, Martin, Robert F., Moore, Richard H., O’Brien, Rachel, Robinson, Claire E., Schuster, Gregory L., Shingler, Taylor J., Shook, Michael A., Soja, Amber J., Thornhill, Kenneth L., Weakley, Andrew T., Wiggins, Elizabeth B., Winstead, Edward L., Ziemba, Luke D.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9787633/
https://www.ncbi.nlm.nih.gov/pubmed/36590057
http://dx.doi.org/10.1029/2022JD037201
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author Jordan, Carolyn E.
Anderson, Bruce E.
Barrick, John D.
Blum, Dani
Brunke, Kathleen
Chai, Jiajue
Chen, Gao
Crosbie, Ewan C.
Dibb, Jack E.
Dillner, Ann M.
Gargulinski, Emily
Hudgins, Charles H.
Joyce, Emily
Kaspari, Jackson
Martin, Robert F.
Moore, Richard H.
O’Brien, Rachel
Robinson, Claire E.
Schuster, Gregory L.
Shingler, Taylor J.
Shook, Michael A.
Soja, Amber J.
Thornhill, Kenneth L.
Weakley, Andrew T.
Wiggins, Elizabeth B.
Winstead, Edward L.
Ziemba, Luke D.
author_facet Jordan, Carolyn E.
Anderson, Bruce E.
Barrick, John D.
Blum, Dani
Brunke, Kathleen
Chai, Jiajue
Chen, Gao
Crosbie, Ewan C.
Dibb, Jack E.
Dillner, Ann M.
Gargulinski, Emily
Hudgins, Charles H.
Joyce, Emily
Kaspari, Jackson
Martin, Robert F.
Moore, Richard H.
O’Brien, Rachel
Robinson, Claire E.
Schuster, Gregory L.
Shingler, Taylor J.
Shook, Michael A.
Soja, Amber J.
Thornhill, Kenneth L.
Weakley, Andrew T.
Wiggins, Elizabeth B.
Winstead, Edward L.
Ziemba, Luke D.
author_sort Jordan, Carolyn E.
collection PubMed
description Ångström exponents (α) allow reconstruction of aerosol optical spectra over a broad range of wavelengths from measurements at two or more wavelengths. Hyperspectral measurements of atmospheric aerosols provide opportunities to probe measured spectra for information inaccessible from only a few wavelengths. Four sets of hyperspectral in situ aerosol optical coefficients (aerosol‐phase total extinction, σ (ext), and absorption, σ (abs); liquid‐phase soluble absorption from methanol, σ (MeOH‐abs), and water, σ (DI‐abs), extracts) were measured from biomass burning aerosols (BBAs). Hyperspectral single scattering albedo (ω), calculated from σ (ext) and σ (abs), provide spectral resolution over a wide spectral range rare for this optical parameter. Observed spectral shifts between σ (abs) and σ (MeOH‐abs)/σ (DI‐abs) argue in favor of measuring σ (abs) rather than reconstructing it from liquid extracts. Logarithmically transformed spectra exhibited curvature better fit by second‐order polynomials than linear α. Mapping second order fit coefficients (a (1), a (2)) revealed samples from a given fire tended to cluster together, that is, aerosol spectra from a given fire were similar to each other and somewhat distinct from others. Separation in (a (1), a (2)) space for spectra with the same α suggest additional information in second‐order parameterization absent from the linear fit. Spectral features found in the fit residuals indicate more information in the measured spectra than captured by the fits. Above‐detection σ (MeOH‐abs) at 0.7 μm suggests assuming all absorption at long visible wavelengths is BC to partition absorption between BC and brown carbon (BrC) overestimates BC and underestimates BrC across the spectral range. Hyperspectral measurements may eventually discriminate BBA among fires in different ecosystems under variable conditions.
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spelling pubmed-97876332022-12-28 Beyond the Ångström Exponent: Probing Additional Information in Spectral Curvature and Variability of In Situ Aerosol Hyperspectral (0.3–0.7 μm) Optical Properties Jordan, Carolyn E. Anderson, Bruce E. Barrick, John D. Blum, Dani Brunke, Kathleen Chai, Jiajue Chen, Gao Crosbie, Ewan C. Dibb, Jack E. Dillner, Ann M. Gargulinski, Emily Hudgins, Charles H. Joyce, Emily Kaspari, Jackson Martin, Robert F. Moore, Richard H. O’Brien, Rachel Robinson, Claire E. Schuster, Gregory L. Shingler, Taylor J. Shook, Michael A. Soja, Amber J. Thornhill, Kenneth L. Weakley, Andrew T. Wiggins, Elizabeth B. Winstead, Edward L. Ziemba, Luke D. J Geophys Res Atmos Research Article Ångström exponents (α) allow reconstruction of aerosol optical spectra over a broad range of wavelengths from measurements at two or more wavelengths. Hyperspectral measurements of atmospheric aerosols provide opportunities to probe measured spectra for information inaccessible from only a few wavelengths. Four sets of hyperspectral in situ aerosol optical coefficients (aerosol‐phase total extinction, σ (ext), and absorption, σ (abs); liquid‐phase soluble absorption from methanol, σ (MeOH‐abs), and water, σ (DI‐abs), extracts) were measured from biomass burning aerosols (BBAs). Hyperspectral single scattering albedo (ω), calculated from σ (ext) and σ (abs), provide spectral resolution over a wide spectral range rare for this optical parameter. Observed spectral shifts between σ (abs) and σ (MeOH‐abs)/σ (DI‐abs) argue in favor of measuring σ (abs) rather than reconstructing it from liquid extracts. Logarithmically transformed spectra exhibited curvature better fit by second‐order polynomials than linear α. Mapping second order fit coefficients (a (1), a (2)) revealed samples from a given fire tended to cluster together, that is, aerosol spectra from a given fire were similar to each other and somewhat distinct from others. Separation in (a (1), a (2)) space for spectra with the same α suggest additional information in second‐order parameterization absent from the linear fit. Spectral features found in the fit residuals indicate more information in the measured spectra than captured by the fits. Above‐detection σ (MeOH‐abs) at 0.7 μm suggests assuming all absorption at long visible wavelengths is BC to partition absorption between BC and brown carbon (BrC) overestimates BC and underestimates BrC across the spectral range. Hyperspectral measurements may eventually discriminate BBA among fires in different ecosystems under variable conditions. John Wiley and Sons Inc. 2022-11-03 2022-11-16 /pmc/articles/PMC9787633/ /pubmed/36590057 http://dx.doi.org/10.1029/2022JD037201 Text en © 2022. The Authors. 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 Article
Jordan, Carolyn E.
Anderson, Bruce E.
Barrick, John D.
Blum, Dani
Brunke, Kathleen
Chai, Jiajue
Chen, Gao
Crosbie, Ewan C.
Dibb, Jack E.
Dillner, Ann M.
Gargulinski, Emily
Hudgins, Charles H.
Joyce, Emily
Kaspari, Jackson
Martin, Robert F.
Moore, Richard H.
O’Brien, Rachel
Robinson, Claire E.
Schuster, Gregory L.
Shingler, Taylor J.
Shook, Michael A.
Soja, Amber J.
Thornhill, Kenneth L.
Weakley, Andrew T.
Wiggins, Elizabeth B.
Winstead, Edward L.
Ziemba, Luke D.
Beyond the Ångström Exponent: Probing Additional Information in Spectral Curvature and Variability of In Situ Aerosol Hyperspectral (0.3–0.7 μm) Optical Properties
title Beyond the Ångström Exponent: Probing Additional Information in Spectral Curvature and Variability of In Situ Aerosol Hyperspectral (0.3–0.7 μm) Optical Properties
title_full Beyond the Ångström Exponent: Probing Additional Information in Spectral Curvature and Variability of In Situ Aerosol Hyperspectral (0.3–0.7 μm) Optical Properties
title_fullStr Beyond the Ångström Exponent: Probing Additional Information in Spectral Curvature and Variability of In Situ Aerosol Hyperspectral (0.3–0.7 μm) Optical Properties
title_full_unstemmed Beyond the Ångström Exponent: Probing Additional Information in Spectral Curvature and Variability of In Situ Aerosol Hyperspectral (0.3–0.7 μm) Optical Properties
title_short Beyond the Ångström Exponent: Probing Additional Information in Spectral Curvature and Variability of In Situ Aerosol Hyperspectral (0.3–0.7 μm) Optical Properties
title_sort beyond the ångström exponent: probing additional information in spectral curvature and variability of in situ aerosol hyperspectral (0.3–0.7 μm) optical properties
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9787633/
https://www.ncbi.nlm.nih.gov/pubmed/36590057
http://dx.doi.org/10.1029/2022JD037201
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