Different pathways of the formation of highly oxidized multifunctional organic compounds (HOMs) from the gas-phase ozonolysis of <i>β</i>-caryophyllene
The gas-phase mechanism of the formation of highly oxidized multifunctional organic compounds (HOMs) from the ozonolysis of <i>β</i>-caryophyllene was investigated in a free-jet flow system at atmospheric pressure and a temperature of 295 ± 2 K. Reaction products, mainly highly oxidiz...
Main Authors: | , , |
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Format: | Article |
Language: | English |
Published: |
Copernicus Publications
2016-08-01
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Series: | Atmospheric Chemistry and Physics |
Online Access: | https://www.atmos-chem-phys.net/16/9831/2016/acp-16-9831-2016.pdf |
Summary: | The gas-phase mechanism of the formation of highly oxidized multifunctional
organic compounds (HOMs) from the ozonolysis of <i>β</i>-caryophyllene was
investigated in a free-jet flow system at atmospheric pressure and a
temperature of 295 ± 2 K. Reaction products, mainly highly oxidized
RO<sub>2</sub> radicals containing up to 14 oxygen atoms, were detected using
chemical ionization – atmospheric pressure interface – time-of-flight mass
spectrometry with nitrate and acetate ionization.<br><br>
These highly oxidized RO<sub>2</sub> radicals react with NO, NO<sub>2</sub>, HO<sub>2</sub> and
other RO<sub>2</sub> radicals under atmospheric conditions forming the
first-generation HOM closed-shell products.<br><br>
Mechanistic information on the formation of the highly oxidized RO<sub>2</sub>
radicals is based on results obtained with isotopically labelled ozone
(<sup>18</sup>O<sub>3</sub>) in the ozonolysis reaction and from hydrogen/deuterium (H/D) exchange experiments
of acidic H atoms in the products. The experimental findings indicate that
HOM formation in this reaction system is considerably influenced by the
presence of a double bond in the RO<sub>2</sub> radicals primarily formed from the
<i>β</i>-caryophyllene ozonolysis. Three different reaction types for HOM
formation can be proposed, allowing for an explanation of the detected main products:
(i) the simple autoxidation, corresponding to the repetitive reaction
sequence of intramolecular H-abstraction of a RO<sub>2</sub> radical,
RO<sub>2</sub> → QOOH, and subsequent O<sub>2</sub> addition, next forming a peroxy
radical, QOOH + O<sub>2</sub> → R′O<sub>2</sub>; (ii) an extended
autoxidation mechanism additionally involving the internal reaction of a
RO<sub>2</sub> radical with a double bond forming most likely an endoperoxide and
(iii) an extended autoxidation mechanism including CO<sub>2</sub> elimination. The
individual reaction steps of the reaction types (ii) and (iii) are uncertain
at the moment. From the product analysis it can be followed that the simple
autoxidation mechanism accounts only for about one-third of the formed HOMs.<br><br>
Time-dependent measurements showed that the HOM formation proceeds at a
timescale of 3 s or less under the concentration regime applied here.<br><br>
The new reaction pathways represent an extension of the mechanistic
understanding of HOM formation via autoxidation in the atmosphere, as
recently discovered from laboratory investigations on monoterpene ozonolysis. |
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ISSN: | 1680-7316 1680-7324 |