Deutsch
 
Hilfe Datenschutzhinweis Impressum
  DetailsucheBrowse

Datensatz

DATENSATZ AKTIONENEXPORT
  Enhanced growth rate of atmospheric particles from sulfuric acid

Stolzenburg, D., Simon, M., Ranjithkumar, A., Kuerten, A., Lehtipalo, K., Gordon, H., et al. (2020). Enhanced growth rate of atmospheric particles from sulfuric acid. Atmospheric Chemistry and Physics, 20(12), 7359-7372. doi:10.5194/acp-20-7359-2020.

Item is

Basisdaten

einblenden: ausblenden:
Genre: Zeitschriftenartikel

Externe Referenzen

einblenden:

Urheber

einblenden:
ausblenden:
 Urheber:
Stolzenburg, Dominik1, Autor
Simon, Mario1, Autor
Ranjithkumar, Ananth1, Autor
Kuerten, Andreas1, Autor
Lehtipalo, Katrianne1, Autor
Gordon, Hamish1, Autor
Ehrhart, Sebastian2, Autor           
Finkenzeller, Henning1, Autor
Pichelstorfer, Lukas1, Autor
Nieminen, Tuomo1, Autor
He, Xu-Cheng1, Autor
Brilke, Sophia1, Autor
Xiao, Mao1, Autor
Amorim, Antonio1, Autor
Baalbaki, Rima1, Autor
Baccarini, Andrea1, Autor
Beck, Lisa1, Autor
Brakling, Steffen1, Autor
Murillo, Lucia Caudillo1, Autor
Chen, Dexian1, Autor
Chu, Biwu1, AutorDada, Lubna1, AutorDias, Antonio1, AutorDommen, Josef1, AutorDuplissy, Jonathan1, AutorEl Haddad, Imad1, AutorFischer, Lukas1, AutorCarracedo, Loic Gonzalez1, AutorHeinritzi, Martin1, AutorKim, Changhyuk1, AutorKoenig, Theodore K.1, AutorKong, Weimeng1, AutorLamkaddam, Houssni1, AutorLee, Chuan Ping1, AutorLeiminger, Markus1, AutorLi, Zijun1, AutorMakhmutov, Vladimir1, AutorManninen, Hanna E.1, AutorMarie, Guillaume1, AutorMarten, Ruby1, AutorMueller, Tatjana1, AutorNie, Wei1, AutorPartoll, Eva1, AutorPetaja, Tuukka1, AutorPfeifer, Joschka1, AutorPhilippov, Maxim1, AutorRissanen, Matti P.1, AutorRorup, Birte1, AutorSchobesberger, Siegfried1, AutorSchuchmann, Simone1, AutorShen, Jiali1, AutorSipila, Mikko1, AutorSteiner, Gerhard1, AutorStozhkov, Yuri1, AutorTauber, Christian1, AutorTham, Yee Jun1, AutorTome, Antonio1, AutorVazquez-Pufleau, Miguel1, AutorWagner, Andrea C.1, AutorWang, Mingyi1, AutorWang, Yonghong1, AutorWeber, Stefan K.1, AutorWimmer, Daniela1, AutorWlasits, Peter J.1, AutorWu, Yusheng1, AutorYe, Qing1, AutorZauner-Wieczorek, Marcel1, AutorBaltensperger, Urs1, AutorCarslaw, Kenneth S.1, AutorCurtius, Joachim1, AutorDonahue, Neil M.1, AutorFlagan, Richard C.1, AutorHansel, Armin1, AutorKulmala, Markku1, AutorLelieveld, Jos2, Autor           Volkamer, Rainer1, AutorKirkby, Jasper1, AutorWinkler, Paul M.1, Autor mehr..
Affiliations:
1external, ou_persistent22              
2Atmospheric Chemistry, Max Planck Institute for Chemistry, Max Planck Society, ou_1826285              

Inhalt

einblenden:
ausblenden:
Schlagwörter: -
 Zusammenfassung: In the present-day atmosphere, sulfuric acid is the most important vapour for aerosol particle formation and initial growth. However, the growth rates of nanoparticles (< 10 nm) from sulfuric acid remain poorly measured. Therefore, the effect of stabilizing bases, the contribution of ions and the impact of attractive forces on molecular collisions are under debate. Here, we present precise growth rate measurements of uncharged sulfuric acid particles from 1.8 to 10 nm, performed under atmospheric conditions in the CERN (European Organization for Nuclear Research) CLOUD chamber. Our results show that the evaporation of sulfuric acid particles above 2 nm is negligible, and growth proceeds kinetically even at low ammonia concentrations. The experimental growth rates exceed the hard-sphere kinetic limit for the condensation of sulfuric acid. We demonstrate that this results from van derWaals forces between the vapour molecules and particles and disentangle it from charge-dipole interactions. The magnitude of the enhancement depends on the assumed particle hydration and collision kinetics but is increasingly important at smaller sizes, resulting in a steep rise in the observed growth rates with decreasing size. Including the experimental results in a global model, we find that the enhanced growth rate of sulfuric acid particles increases the predicted particle number concentrations in the upper free troposphere by more than 50 %.

Details

einblenden:
ausblenden:
Sprache(n):
 Datum: 2020
 Publikationsstatus: Erschienen
 Seiten: -
 Ort, Verlag, Ausgabe: -
 Inhaltsverzeichnis: -
 Art der Begutachtung: -
 Identifikatoren: ISI: 000543786800003
DOI: 10.5194/acp-20-7359-2020
 Art des Abschluß: -

Veranstaltung

einblenden:

Entscheidung

einblenden:

Projektinformation

einblenden:

Quelle 1

einblenden:
ausblenden:
Titel: Atmospheric Chemistry and Physics
  Kurztitel : ACP
Genre der Quelle: Zeitschrift
 Urheber:
Affiliations:
Ort, Verlag, Ausgabe: Göttingen : Copernicus Publications
Seiten: - Band / Heft: 20 (12) Artikelnummer: - Start- / Endseite: 7359 - 7372 Identifikator: ISSN: 1680-7316
CoNE: https://pure.mpg.de/cone/journals/resource/111030403014016