Heterogeneous ice nucleation of viscous secondary organic aerosol produced from ozonolysis of <i>α</i>-pinene
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Published:2016-05-27
Issue:10
Volume:16
Page:6495-6509
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ISSN:1680-7324
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Container-title:Atmospheric Chemistry and Physics
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language:en
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Short-container-title:Atmos. Chem. Phys.
Author:
Ignatius Karoliina, Kristensen Thomas B.ORCID, Järvinen EmmaORCID, Nichman LeonidORCID, Fuchs Claudia, Gordon HamishORCID, Herenz PaulORCID, Hoyle Christopher R.ORCID, Duplissy Jonathan, Garimella Sarvesh, Dias Antonio, Frege CarlaORCID, Höppel Niko, Tröstl JasminORCID, Wagner Robert, Yan ChaoORCID, Amorim Antonio, Baltensperger Urs, Curtius JoachimORCID, Donahue Neil M.ORCID, Gallagher Martin W.ORCID, Kirkby JasperORCID, Kulmala MarkkuORCID, Möhler Ottmar, Saathoff Harald, Schnaiter MartinORCID, Tomé AntonioORCID, Virtanen Annele, Worsnop Douglas, Stratmann Frank
Abstract
Abstract. There are strong indications that particles containing secondary organic aerosol (SOA) exhibit amorphous solid or semi-solid phase states in the atmosphere. This may facilitate heterogeneous ice nucleation and thus influence cloud properties. However, experimental ice nucleation studies of biogenic SOA are scarce. Here, we investigated the ice nucleation ability of viscous SOA particles. The SOA particles were produced from the ozone initiated oxidation of α-pinene in an aerosol chamber at temperatures in the range from −38 to −10 °C at 5–15 % relative humidity with respect to water to ensure their formation in a highly viscous phase state, i.e. semi-solid or glassy. The ice nucleation ability of SOA particles with different sizes was investigated with a new continuous flow diffusion chamber. For the first time, we observed heterogeneous ice nucleation of viscous α-pinene SOA for ice saturation ratios between 1.3 and 1.4 significantly below the homogeneous freezing limit. The maximum frozen fractions found at temperatures between −39.0 and −37.2 °C ranged from 6 to 20 % and did not depend on the particle surface area. Global modelling of monoterpene SOA particles suggests that viscous biogenic SOA particles are indeed present in regions where cirrus cloud formation takes place. Hence, they could make up an important contribution to the global ice nucleating particle budget.
Funder
European Research Council Bundesministerium für Bildung und Forschung Schweizerischer Nationalfonds zur Förderung der Wissenschaftlichen Forschung Academy of Finland
Publisher
Copernicus GmbH
Subject
Atmospheric Science
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