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Direct imaging of changes in aerosol particle viscosity upon hydration and chemical aging

Organic aerosol particles (OA) play major roles in atmospheric chemistry, climate, and public health. Aerosol particle viscosity is highly important since it can determine the ability of chemical species such as oxidants, organics or water to diffuse into the particle bulk. Recent measurements indic...

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Autores principales: Hosny, N. A., Fitzgerald, C., Vyšniauskas, A., Athanasiadis, A., Berkemeier, T., Uygur, N., Pöschl, U., Shiraiwa, M., Kalberer, M., Pope, F. D., Kuimova, M. K.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Royal Society of Chemistry 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5975791/
https://www.ncbi.nlm.nih.gov/pubmed/29910892
http://dx.doi.org/10.1039/c5sc02959g
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author Hosny, N. A.
Fitzgerald, C.
Vyšniauskas, A.
Athanasiadis, A.
Berkemeier, T.
Uygur, N.
Pöschl, U.
Shiraiwa, M.
Kalberer, M.
Pope, F. D.
Kuimova, M. K.
author_facet Hosny, N. A.
Fitzgerald, C.
Vyšniauskas, A.
Athanasiadis, A.
Berkemeier, T.
Uygur, N.
Pöschl, U.
Shiraiwa, M.
Kalberer, M.
Pope, F. D.
Kuimova, M. K.
author_sort Hosny, N. A.
collection PubMed
description Organic aerosol particles (OA) play major roles in atmospheric chemistry, climate, and public health. Aerosol particle viscosity is highly important since it can determine the ability of chemical species such as oxidants, organics or water to diffuse into the particle bulk. Recent measurements indicate that OA may be present in highly viscous states, however, diffusion rates of small molecules such as water are not limited by these high viscosities. Direct observational evidence of kinetic barriers caused by high viscosity and low diffusivity in aerosol particles were not available until recently; and techniques that are able to dynamically quantify and track viscosity changes during atmospherically relevant processes are still unavailable for atmospheric aerosols. Here we report quantitative, real-time, online observations of microscopic viscosity changes in aerosol particles of atmospherically relevant composition, using fluorescence lifetime imaging (FLIM) of viscosity. We show that microviscosity in ozonated oleic acid droplets and secondary organic aerosol (SOA) particles formed by ozonolysis of myrcene increases substantially with decreasing humidity and atmospheric oxidative aging processes. Furthermore, we found unexpected heterogeneities of microviscosity inside individual aerosol particles. The results of this study enhance our understanding of organic aerosol processes on microscopic scales and may have important implications for the modeling of atmospheric aerosol growth, composition and interactions with trace gases and clouds.
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spelling pubmed-59757912018-06-15 Direct imaging of changes in aerosol particle viscosity upon hydration and chemical aging Hosny, N. A. Fitzgerald, C. Vyšniauskas, A. Athanasiadis, A. Berkemeier, T. Uygur, N. Pöschl, U. Shiraiwa, M. Kalberer, M. Pope, F. D. Kuimova, M. K. Chem Sci Chemistry Organic aerosol particles (OA) play major roles in atmospheric chemistry, climate, and public health. Aerosol particle viscosity is highly important since it can determine the ability of chemical species such as oxidants, organics or water to diffuse into the particle bulk. Recent measurements indicate that OA may be present in highly viscous states, however, diffusion rates of small molecules such as water are not limited by these high viscosities. Direct observational evidence of kinetic barriers caused by high viscosity and low diffusivity in aerosol particles were not available until recently; and techniques that are able to dynamically quantify and track viscosity changes during atmospherically relevant processes are still unavailable for atmospheric aerosols. Here we report quantitative, real-time, online observations of microscopic viscosity changes in aerosol particles of atmospherically relevant composition, using fluorescence lifetime imaging (FLIM) of viscosity. We show that microviscosity in ozonated oleic acid droplets and secondary organic aerosol (SOA) particles formed by ozonolysis of myrcene increases substantially with decreasing humidity and atmospheric oxidative aging processes. Furthermore, we found unexpected heterogeneities of microviscosity inside individual aerosol particles. The results of this study enhance our understanding of organic aerosol processes on microscopic scales and may have important implications for the modeling of atmospheric aerosol growth, composition and interactions with trace gases and clouds. Royal Society of Chemistry 2016-02-01 2015-11-12 /pmc/articles/PMC5975791/ /pubmed/29910892 http://dx.doi.org/10.1039/c5sc02959g Text en This journal is © The Royal Society of Chemistry 2016 https://creativecommons.org/licenses/by/3.0/This article is freely available. This article is licensed under a Creative Commons Attribution 3.0 Unported Licence (CC BY 3.0)
spellingShingle Chemistry
Hosny, N. A.
Fitzgerald, C.
Vyšniauskas, A.
Athanasiadis, A.
Berkemeier, T.
Uygur, N.
Pöschl, U.
Shiraiwa, M.
Kalberer, M.
Pope, F. D.
Kuimova, M. K.
Direct imaging of changes in aerosol particle viscosity upon hydration and chemical aging
title Direct imaging of changes in aerosol particle viscosity upon hydration and chemical aging
title_full Direct imaging of changes in aerosol particle viscosity upon hydration and chemical aging
title_fullStr Direct imaging of changes in aerosol particle viscosity upon hydration and chemical aging
title_full_unstemmed Direct imaging of changes in aerosol particle viscosity upon hydration and chemical aging
title_short Direct imaging of changes in aerosol particle viscosity upon hydration and chemical aging
title_sort direct imaging of changes in aerosol particle viscosity upon hydration and chemical aging
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5975791/
https://www.ncbi.nlm.nih.gov/pubmed/29910892
http://dx.doi.org/10.1039/c5sc02959g
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