New insights into the chemical composition and formation mechanisms of secondary organic aerosols produced in the ozonolysis of limonene

被引:1
作者
Jacob, F. [1 ,2 ]
Houzel, N. [3 ]
Genevray, P. [4 ]
Clety, C. [3 ]
Coeur, C. [3 ]
Perdrix, E. [1 ]
Alleman, L. Y. [1 ]
Antherieu, S. [2 ]
Garcon, G. [2 ]
Dhont, G. [3 ]
Cuisset, A. [3 ]
Lo Guidice, J. -m. [2 ]
Tomas, A. [1 ]
机构
[1] Univ Lille, Inst Mines Telecom, Ctr Energy & Environm, IMT Nord Europe, F-59000 Lille, France
[2] Univ Lille, Inst Pasteur Lille, CHU Lille, ULR 4483,IMPECS IMPact Environm Clin Sante, F-59000 Lille, France
[3] Univ Littoral Cote dOpale, UR 4493, Lab Phys Chim Atmosphere, F-59140 Dunkerque, France
[4] Univ Littoral Cote dOpale, Ctr Commun Mesures, F-59140 Dunkerque, France
关键词
Terpene; Ozone; SOA; Oligomers; Nucleation; Complexation energy; GAS-PHASE OZONOLYSIS; SOURCE APPORTIONMENT; OXIDATION-PRODUCTS; MASS-SPECTROMETRY; MOLECULAR-WEIGHT; ALPHA-PINENE; DOUBLE-BONDS; BASIS-SETS; DENSITY; OZONE;
D O I
10.1016/j.jaerosci.2023.106214
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
Limonene is a wide-spread volatile organic compound in the atmosphere. Its fast reaction with ozone leads to a large range of low-volatility oxygenated products that can form aerosols through gas-to-particle conversion processes. However, the physical and chemical mechanisms at the origin of particle formation are still fairly unknown despite the general importance of atmo-spheric aerosols towards health and climate. In the present work, we combined experimental and theoretical approaches to potentially decipher new significant mechanisms in the ozonolysis of limonene. After a thorough analysis of secondary organic aerosol (SOA) chemical composition highlighting for the first time the formation of oligomers up to heptamer structures as well as linear organic diacids, we proposed a formation mechanism involving non-covalent hydrogen bonding implying carboxylic/carbonyl/hydroxy groups. Theoretical quantum chemical calcula-tions on dimers and trimers confirmed the stability of such structures. Thus, the present results highlight the formation of large oligomeric molecules whose atmospheric fate and health impacts need to be investigated. More generally, it is suggested that these non-covalent H-bonds play a role in the first steps of SOA formation from terpene oxidation in the atmosphere.
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页数:16
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