Pasik Dominika, Frandsen Benjamin N, Meder Melissa, Iyer Siddharth, Kurtén Theo, Myllys Nanna
Department of Chemistry, University of Helsinki, Helsinki 00014, Finland.
Institute for Atmospheric and Earth System Research, University of Helsinki, Helsinki 00014, Finland.
J Am Chem Soc. 2024 May 15;146(19):13427-13437. doi: 10.1021/jacs.4c02523. Epub 2024 May 7.
This study assesses the atmospheric impact of reactions between unsaturated hydrocarbons such as isoprene and monoterpenes and peroxy radicals containing various functional groups. We find that reactions between alkenes and acyl peroxy radicals have reaction rates high enough to be feasible in the atmosphere and lead to high molar mass accretion products. Moreover, the reaction between unsaturated hydrocarbons and acyl peroxy radicals leads to an alkyl radical, to which molecular oxygen rapidly adds. This finding is confirmed by both theoretical calculations and experiments. The formed perester peroxy radical may either undergo further H-shift reactions or react bimolecularly. The multifunctional oxygenated compounds formed through acyl peroxy radical + alkene reactions are potentially important contributors to particle formation and growth. Thus, acyl peroxy radical-initiated oxidation chemistry may need to be included in atmospheric models.
本研究评估了异戊二烯和单萜等不饱和烃与含有各种官能团的过氧自由基之间反应对大气的影响。我们发现,烯烃与酰基过氧自由基之间的反应速率高到足以在大气中发生,并导致高摩尔质量的积聚产物。此外,不饱和烃与酰基过氧自由基之间的反应会产生一个烷基自由基,分子氧会迅速加成到该自由基上。这一发现得到了理论计算和实验的证实。形成的过氧酯过氧自由基可能会进一步发生氢转移反应或双分子反应。通过酰基过氧自由基+烯烃反应形成的多功能氧化化合物可能是颗粒物形成和增长的重要潜在贡献者。因此,大气模型可能需要纳入酰基过氧自由基引发的氧化化学过程。