Cyclohexene Oxidation Initiated by Ozone: Linking Ozonolysis to Low-Temperature Combustion Chemistry

Abstract Ozone-initiated oxidation of cyclohexene bridges the gap between classical alkene ozonolysis and low-temperature combustion chemistry. In this study, it was investigated in jet-stirred reactors using complementary gas-chromatographic measurements over 350–900 K, temperature-dependent synchrotron vacuum-ultraviolet photoionization mass spectrometry (SVUV-PIMS) over 370–800 K for only ozone-containing mixtures, and isomer-resolved synchrotron vacuum-ultraviolet photoelectron-photoion coincidence (SVUV-PEPICO) spectroscopy at 400 K under only ozone-containing conditions. Ozone induces substantial low-temperature oxidation, including about 1,000 ppm 1,6-hexanedial, while synchrotron measurements identify cyclic ethers and ketohydroperoxides (KHPs). The temperature-dependent detection of cyclohex-2-en-1-one provides direct evidence for competition between unimolecular peroxy-radical isomerization and bimolecular radical-recombination pathways: the oxyl-radical channel accounts for 72.3% of the modeled branching at 370 K, whereas hydroperoxide formation and isomerization account for 51.5% and 29.2%, respectively, near 575 K. A kinetic model reproduces cyclohexene consumption and the principal product trends, showing that prompt fragmentation dominates the initial ozonolysis step and that subsequent cyclic-peroxy chemistry is strongly temperature dependent.

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Publication Details

Journal
The Journal of Physical Chemistry A
Published
2026-10-05
DOI
https://doi.org/10.1021/acs.jpca.6c04280
Primary Topic
Advanced Combustion Engine Technologies
Type
article
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article

Cyclohexene Oxidation Initiated by Ozone: Linking Ozonolysis to Low-Temperature Combustion Chemistry

Guillaume Vanhove, Jiabiao Zou, Olivier Herbinet, Philippe Arnoux et al.
The Journal of Physical Chemistry A
Advanced Combustion Engine Technologies
article

Cyclohexene Oxidation Initiated by Ozone: Linking Ozonolysis to Low-Temperature Combustion Chemistry

Guillaume Vanhove, Jiabiao Zou, Olivier Herbinet, Philippe Arnoux, Luc–Sy Tran, Jérémy Bourgalais, Caroline Smith Lewin, Laurent Nahon, Bingzhi Liu, Frédérique Battin‐Leclerc, Zhandong Wang, Gustavo A. García
article en

Abstract

Abstract Ozone-initiated oxidation of cyclohexene bridges the gap between classical alkene ozonolysis and low-temperature combustion chemistry. In this study, it was investigated in jet-stirred reactors using complementary gas-chromatographic measurements over 350–900 K, temperature-dependent synchrotron vacuum-ultraviolet photoionization mass spectrometry (SVUV-PIMS) over 370–800 K for only ozone-containing mixtures, and isomer-resolved synchrotron vacuum-ultraviolet photoelectron-photoion coincidence (SVUV-PEPICO) spectroscopy at 400 K under only ozone-containing conditions. Ozone induces substantial low-temperature oxidation, including about 1,000 ppm 1,6-hexanedial, while synchrotron measurements identify cyclic ethers and ketohydroperoxides (KHPs). The temperature-dependent detection of cyclohex-2-en-1-one provides direct evidence for competition between unimolecular peroxy-radical isomerization and bimolecular radical-recombination pathways: the oxyl-radical channel accounts for 72.3% of the modeled branching at 370 K, whereas hydroperoxide formation and isomerization account for 51.5% and 29.2%, respectively, near 575 K. A kinetic model reproduces cyclohexene consumption and the principal product trends, showing that prompt fragmentation dominates the initial ozonolysis step and that subsequent cyclic-peroxy chemistry is strongly temperature dependent.

The Journal of Physical Chemistry A
University of Science and Technology of China (CN), Université de Lille (FR), Synchrotron soleil (FR), Université de Rennes (FR), Zhejiang University (CN), Université de Lorraine (FR)
Openalex Percentile: Top 22%
Advanced Combustion Engine Technologies
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