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Secondary organic aerosol reduced by mixture of atmospheric vapours

Authors :
McFiggans, Gordon
Mentel, Thomas F.
Wildt, Jürgen
Pullinen, Iida
Kang, Sungah
Kleist, Einhard
Schmitt, Sebastian
Springer, Monika
Tillmann, Ralf
Wu, Cheng
Zhao, Defeng
Hallquist, Mattias
Faxon, Cameron
Le Breton, Michael
Hallquist, Åsa M.
Simpson, David
Bergström, Robert
Jenkin, Michael E.
Ehn, Mikael
Thornton, Joel A.
Alfarra, M. Rami
Bannan, Thomas J.
Percival, Carl J.
Priestley, Michael
Topping, David
Kiendler-Scharr, Astrid
Source :
Nature; January 2019, Vol. 565 Issue: 7741 p587-593, 7p
Publication Year :
2019

Abstract

Secondary organic aerosol contributes to the atmospheric particle burden with implications for air quality and climate. Biogenic volatile organic compounds such as terpenoids emitted from plants are important secondary organic aerosol precursors with isoprene dominating the emissions of biogenic volatile organic compounds globally. However, the particle mass from isoprene oxidation is generally modest compared to that of other terpenoids. Here we show that isoprene, carbon monoxide and methane can each suppress the instantaneous mass and the overall mass yield derived from monoterpenes in mixtures of atmospheric vapours. We find that isoprene ‘scavenges’ hydroxyl radicals, preventing their reaction with monoterpenes, and the resulting isoprene peroxy radicals scavenge highly oxygenated monoterpene products. These effects reduce the yield of low-volatility products that would otherwise form secondary organic aerosol. Global model calculations indicate that oxidant and product scavenging can operate effectively in the real atmosphere. Thus highly reactive compounds (such as isoprene) that produce a modest amount of aerosol are not necessarily net producers of secondary organic particle mass and their oxidation in mixtures of atmospheric vapours can suppress both particle number and mass of secondary organic aerosol. We suggest that formation mechanisms of secondary organic aerosol in the atmosphere need to be considered more realistically, accounting for mechanistic interactions between the products of oxidizing precursor molecules (as is recognized to be necessary when modelling ozone production).

Details

Language :
English
ISSN :
00280836 and 14764687
Volume :
565
Issue :
7741
Database :
Supplemental Index
Journal :
Nature
Publication Type :
Periodical
Accession number :
ejs48281826
Full Text :
https://doi.org/10.1038/s41586-018-0871-y