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Increase in precipitation scavenging contributes to long-term reductions of light-absorbing aerosol in the Arctic
Stockholm University, Faculty of Science, Department of Environmental Science. Stockholm University, Faculty of Science, The Bolin Centre for Climate Research (together with KTH & SMHI).ORCID iD: 0000-0001-9691-4496
Stockholm University, Faculty of Science, Department of Environmental Science. Stockholm University, Faculty of Science, The Bolin Centre for Climate Research (together with KTH & SMHI).ORCID iD: 0000-0001-7471-3458
Stockholm University, Faculty of Science, Department of Environmental Science. Stockholm University, Faculty of Science, The Bolin Centre for Climate Research (together with KTH & SMHI).ORCID iD: 0000-0003-2336-220X
Stockholm University, Faculty of Science, Department of Environmental Science. Stockholm University, Faculty of Science, The Bolin Centre for Climate Research (together with KTH & SMHI).ORCID iD: 0000-0003-1389-8713
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Number of Authors: 92024 (English)In: Atmospheric Chemistry And Physics, ISSN 1680-7316, E-ISSN 1680-7324, Vol. 24, no 4, p. 2059-2075Article in journal (Refereed) Published
Abstract [en]

We investigated long-term changes using a harmonised 22-year data set of aerosol light absorption measurements, in conjunction with air mass history and aerosol source analysis. The measurements were performed at Zeppelin Observatory, Svalbard, from 2002 to 2023. We report a statistically significant decreasing long-term trend for the light absorption coefficient. However, the last 8 years of 2016–2023 showed a slight increase in the magnitude of the light absorption coefficient for the Arctic haze season. In addition, we observed an increasing trend in the single-scattering albedo from 2002 to 2023. Five distinct source regions, representing different transport pathways, were identified. The trends involving air masses from the five regions showed decreasing absorption coefficients, except for the air masses from Eurasia. We show that the changes in the occurrences of each transport pathway cannot explain the reductions in the absorption coefficient observed at the Zeppelin station. An increase in contributions of air masses from more marine regions, with lower absorption coefficients, is compensated for by an influence from high-emission regions. The proportion of air masses en route to Zeppelin, which have been influenced by active fires, has undergone a noticeable increase starting in 2015. However, this increase has not impacted the long-term trends in the concentration of light-absorbing aerosol. Along with aerosol optical properties, we also show an increasing trend in accumulated surface precipitation experienced by air masses en route to the Zeppelin Observatory. We argue that the increase in precipitation, as experienced by air masses arriving at the station, can explain a quarter of the long-term reduction in the light absorption coefficient. We emphasise that meteorological conditions en route to the Zeppelin Observatory are critical for understanding the observed trends.

Place, publisher, year, edition, pages
2024. Vol. 24, no 4, p. 2059-2075
National Category
Meteorology and Atmospheric Sciences Physical Geography
Identifiers
URN: urn:nbn:se:su:diva-228170DOI: 10.5194/acp-24-2059-2024ISI: 001190468400001Scopus ID: 2-s2.0-85186069342OAI: oai:DiVA.org:su-228170DiVA, id: diva2:1851466
Available from: 2024-04-15 Created: 2024-04-15 Last updated: 2025-02-25Bibliographically approved
In thesis
1. Understanding the long-term trends and seasonality of Arctic atmospheric aerosol: Through the lens of black carbon and new particle formation
Open this publication in new window or tab >>Understanding the long-term trends and seasonality of Arctic atmospheric aerosol: Through the lens of black carbon and new particle formation
2025 (English)Doctoral thesis, comprehensive summary (Other academic)
Abstract [en]

The Arctic region is witnessing changes on an unprecedented level. Surface air temperatures have increased at a rate four times the global average. Two of the main climate forcers that are responsible for perturbing the radiative balance in the Arctic are greenhouse gases and atmospheric aerosols. Aerosols are tiny solid or liquid particles suspended in the atmosphere that range in size from a few nanometres to tens of microns.  These particles affect the climate by interacting with radiation and influencing cloud formation, brightness, and longevity.  The work presented in this thesis aims to improve our understanding of the drivers and mechanisms involved in controlling both the seasonal variations and the long-term changes in Arctic aerosols, and analyse the general aerosol lifecycle.  In a changing Arctic, both the emissions of anthropogenic and natural aerosol particles have and are expected to continue to change. For one, the long-range transport of anthropogenic aerosols is likely to continue to decline with reductions in emissions.

Measurements of Arctic aerosols were carried out at a research observatory on Svalbard. In this thesis, a variety of instrumentation and measurements were used to assess seasonal and long-term changes in various aerosol-related variables.  The work in this thesis shows that the concentration of light-absorbing aerosol particles has decreased significantly over the past two decades, with the largest decrease in contributions from northern Siberia.  This thesis argues that a quarter of the overall reduction is due to changes to the removal processes via wet scavenging. In this thesis, the changes in environmental parameters along the transport pathway to the site are explored. From this perspective, precipitation is shown to act as both a source and a sink, impacting the number of particles depending on their size, whilst solar radiation is shown to promote an increase in the number of aerosol particles over the entire size spectrum.  Furthermore, using the first long-term time series measuring light-absorbing particles inside and outside of clouds, the process of nucleation scavenging is explored. Increased uptake of light-absorbing particles into cloud droplets is presented from April until October. Incorporation of these particles into cloud droplets is shown to be dependent on temperature and cloud water content. Lastly, the frequency in the production of small particles, barely a nanometre in diameter, in the vicinity of Svalbard is shown to be heavily influenced by solar radiation and the total surface area of pre-existing aerosol particles.  The Greenland Sea is shown to be a relatively larger source of these small particles compared to neighbouring seas.  Its shown that the total surface area of pre-existing aerosols within airmasses is reduced through cloud and precipitation events, setting the stage for new particle formation and the replenishment of aerosol particles in the presence of solar radiation. 

Understanding how these findings can be broadened and applied across a larger geographical region remains to be answered. Additionally, the overall effect these mechanisms and changes can have on the radiative balance in the Arctic requires further exploration.

Place, publisher, year, edition, pages
Stockholm: Department of Environmental Science, Stockholm University, 2025. p. 50
Keywords
Arctic, aerosol, scavenging, sinks, precipitation, new particle formation, black carbon, trends, seasonality
National Category
Environmental Sciences Climate Science
Research subject
Environmental Sciences
Identifiers
urn:nbn:se:su:diva-239641 (URN)978-91-8107-136-8 (ISBN)978-91-8107-137-5 (ISBN)
Public defence
2025-04-11, De Geersalen, Geovetenskapens hus, Svante Arrhenius väg 14 and online via Zoom, public link is available at the department website, Stockholm, 10:00 (English)
Opponent
Supervisors
Available from: 2025-03-19 Created: 2025-02-25 Last updated: 2025-03-11Bibliographically approved

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Heslin-Rees, DominicTunved, PeterStröm, JohanCremer, Roxana S.Zieger, PaulRiipinen, IlonaEkman, Annica M. L.Krejci, Radovan

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Heslin-Rees, DominicTunved, PeterStröm, JohanCremer, Roxana S.Zieger, PaulRiipinen, IlonaEkman, Annica M. L.Krejci, Radovan
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Department of Environmental ScienceThe Bolin Centre for Climate Research (together with KTH & SMHI)Department of Meteorology
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