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Measurement–model comparison of stabilized Criegee intermediate and highly oxygenated molecule production in the CLOUD chamber

  • Nina Sarnela
  • , Tuija Jokinen
  • , Jonathan Duplissy
  • , Chao Yan
  • , Tuomo Nieminen
  • , Mikael Ehn
  • , Siegfried Schobesberger
  • , Martin Heinritzi
  • , Sebastian Ehrhart
  • , Katrianne Lehtipalo
  • , Jasmin Tröstl
  • , Mario Simon
  • , Andreas Kürten
  • , Markus Leiminger
  • , Michael J. Lawler
  • , Matti P. Rissanen
  • , Federico Bianchi
  • , Arnaud P. Praplan
  • , Jani Hakala
  • , Antonio Amorim
  • Marc Gonin, Armin Hansel, Jasper Kirkby, Josef Dommen, Joachim Curtius, James N. Smith, Tuukka Petäjä, Douglas R. Worsnop, Markku Kulmala, Neil M. Donahue, Mikko Sipilä

Tutkimustuotos: ArtikkeliTieteellinenvertaisarvioitu

21 Sitaatiot (Scopus)

Abstrakti

Atmospheric oxidation is an important phenomenon which produces large quantities of low-volatility compounds such as sulfuric acid and oxidized organic compounds. Such species may be involved in the nucleation of particles and enhance their subsequent growth to reach the size of cloud condensation nuclei (CCN). In this study, we investigate alpha-pinene, the most abundant monoterpene globally, and its oxidation products formed through ozonolysis in the Cosmic Leaving OUtdoor Droplets (CLOUD) chamber at CERN (the European Organization for Nuclear Research). By scavenging hydroxyl radicals (OH) with hydrogen (H-2), we were able to investigate the formation of highly oxygenated molecules (HOMs) purely driven by ozonolysis and study the oxidation of sulfur dioxide (SO2) driven by stabilized Criegee intermediates (sCIs). We measured the concentrations of HOM and sulfuric acid with a chemical ionization atmospheric-pressure interface time-of-flight (CI-APi-TOF) mass spectrometer and compared the measured concentrations with simulated concentrations calculated with a kinetic model. We found molar yields in the range of 3.5-6.52-320-50 min later in the simulations. The results shown here are consistent with the recently published yields for HOM formation from different laboratory experiments. Together with the sCI yields, these results help us to understand atmospheric oxidation processes better and make the reaction parameters more comprehensive for broader use.
AlkuperäiskieliEnglanti
Sivut2363-2380
Sivumäärä18
JulkaisuAtmospheric Chemistry and Physics
Vuosikerta18
Numero4
DOI - pysyväislinkit
TilaJulkaistu - 1 helmik. 2018
Julkaistu ulkoisestiKyllä
OKM-julkaisutyyppiA1 Alkuperäisartikkeli tieteellisessä aikakauslehdessä

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