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New Particle Formation and Growth from Dimethyl Sulfide Oxidation by Hydroxyl Radicals

[Image: see text] Dimethyl sulfide (DMS) is produced by plankton in oceans and constitutes the largest natural emission of sulfur to the atmosphere. In this work, we examine new particle formation from the primary pathway of oxidation of gas-phase DMS by OH radicals. We particularly focus on particl...

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Autores principales: Rosati, Bernadette, Christiansen, Sigurd, Wollesen de Jonge, Robin, Roldin, Pontus, Jensen, Mads Mørk, Wang, Kai, Moosakutty, Shamjad P., Thomsen, Ditte, Salomonsen, Camilla, Hyttinen, Noora, Elm, Jonas, Feilberg, Anders, Glasius, Marianne, Bilde, Merete
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2021
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8054244/
https://www.ncbi.nlm.nih.gov/pubmed/33889792
http://dx.doi.org/10.1021/acsearthspacechem.0c00333
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author Rosati, Bernadette
Christiansen, Sigurd
Wollesen de Jonge, Robin
Roldin, Pontus
Jensen, Mads Mørk
Wang, Kai
Moosakutty, Shamjad P.
Thomsen, Ditte
Salomonsen, Camilla
Hyttinen, Noora
Elm, Jonas
Feilberg, Anders
Glasius, Marianne
Bilde, Merete
author_facet Rosati, Bernadette
Christiansen, Sigurd
Wollesen de Jonge, Robin
Roldin, Pontus
Jensen, Mads Mørk
Wang, Kai
Moosakutty, Shamjad P.
Thomsen, Ditte
Salomonsen, Camilla
Hyttinen, Noora
Elm, Jonas
Feilberg, Anders
Glasius, Marianne
Bilde, Merete
author_sort Rosati, Bernadette
collection PubMed
description [Image: see text] Dimethyl sulfide (DMS) is produced by plankton in oceans and constitutes the largest natural emission of sulfur to the atmosphere. In this work, we examine new particle formation from the primary pathway of oxidation of gas-phase DMS by OH radicals. We particularly focus on particle growth and mass yield as studied experimentally under dry conditions using the atmospheric simulation chamber AURA. Experimentally, we show that aerosol mass yields from oxidation of 50–200 ppb of DMS are low (2–7%) and that particle growth rates (8.2–24.4 nm/h) are comparable with ambient observations. An HR-ToF-AMS was calibrated using methanesulfonic acid (MSA) to account for fragments distributed across both the organic and sulfate fragmentation table. AMS-derived chemical compositions revealed that MSA was always more dominant than sulfate in the secondary aerosols formed. Modeling using the Aerosol Dynamics, gas- and particle-phase chemistry kinetic multilayer model for laboratory CHAMber studies (ADCHAM) indicates that the Master Chemical Mechanism gas-phase chemistry alone underestimates experimentally observed particle formation and that DMS multiphase and autoxidation chemistry is needed to explain observations. Based on quantum chemical calculations, we conclude that particle formation from DMS oxidation in the ambient atmosphere will most likely be driven by mixed sulfuric acid/MSA clusters clustering with both amines and ammonia.
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spelling pubmed-80542442021-04-20 New Particle Formation and Growth from Dimethyl Sulfide Oxidation by Hydroxyl Radicals Rosati, Bernadette Christiansen, Sigurd Wollesen de Jonge, Robin Roldin, Pontus Jensen, Mads Mørk Wang, Kai Moosakutty, Shamjad P. Thomsen, Ditte Salomonsen, Camilla Hyttinen, Noora Elm, Jonas Feilberg, Anders Glasius, Marianne Bilde, Merete ACS Earth Space Chem [Image: see text] Dimethyl sulfide (DMS) is produced by plankton in oceans and constitutes the largest natural emission of sulfur to the atmosphere. In this work, we examine new particle formation from the primary pathway of oxidation of gas-phase DMS by OH radicals. We particularly focus on particle growth and mass yield as studied experimentally under dry conditions using the atmospheric simulation chamber AURA. Experimentally, we show that aerosol mass yields from oxidation of 50–200 ppb of DMS are low (2–7%) and that particle growth rates (8.2–24.4 nm/h) are comparable with ambient observations. An HR-ToF-AMS was calibrated using methanesulfonic acid (MSA) to account for fragments distributed across both the organic and sulfate fragmentation table. AMS-derived chemical compositions revealed that MSA was always more dominant than sulfate in the secondary aerosols formed. Modeling using the Aerosol Dynamics, gas- and particle-phase chemistry kinetic multilayer model for laboratory CHAMber studies (ADCHAM) indicates that the Master Chemical Mechanism gas-phase chemistry alone underestimates experimentally observed particle formation and that DMS multiphase and autoxidation chemistry is needed to explain observations. Based on quantum chemical calculations, we conclude that particle formation from DMS oxidation in the ambient atmosphere will most likely be driven by mixed sulfuric acid/MSA clusters clustering with both amines and ammonia. American Chemical Society 2021-03-25 2021-04-15 /pmc/articles/PMC8054244/ /pubmed/33889792 http://dx.doi.org/10.1021/acsearthspacechem.0c00333 Text en © 2021 The Authors. Published by American Chemical Society Permits the broadest form of re-use including for commercial purposes, provided that author attribution and integrity are maintained (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Rosati, Bernadette
Christiansen, Sigurd
Wollesen de Jonge, Robin
Roldin, Pontus
Jensen, Mads Mørk
Wang, Kai
Moosakutty, Shamjad P.
Thomsen, Ditte
Salomonsen, Camilla
Hyttinen, Noora
Elm, Jonas
Feilberg, Anders
Glasius, Marianne
Bilde, Merete
New Particle Formation and Growth from Dimethyl Sulfide Oxidation by Hydroxyl Radicals
title New Particle Formation and Growth from Dimethyl Sulfide Oxidation by Hydroxyl Radicals
title_full New Particle Formation and Growth from Dimethyl Sulfide Oxidation by Hydroxyl Radicals
title_fullStr New Particle Formation and Growth from Dimethyl Sulfide Oxidation by Hydroxyl Radicals
title_full_unstemmed New Particle Formation and Growth from Dimethyl Sulfide Oxidation by Hydroxyl Radicals
title_short New Particle Formation and Growth from Dimethyl Sulfide Oxidation by Hydroxyl Radicals
title_sort new particle formation and growth from dimethyl sulfide oxidation by hydroxyl radicals
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8054244/
https://www.ncbi.nlm.nih.gov/pubmed/33889792
http://dx.doi.org/10.1021/acsearthspacechem.0c00333
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