Direct kinetic measurements and theoretical predictions of an isoprene-derived Criegee intermediate.
basic_science · Level V
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- Record sourced from PubMed, PMID 32321826.
- Also identified by DOI 10.1073/pnas.1916711117 and PMC identifier 7211945.
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Abstract
Isoprene has the highest emission into Earth's atmosphere of any nonmethane hydrocarbon. Atmospheric processing of alkenes, including isoprene, via ozonolysis leads to the formation of zwitterionic reactive intermediates, known as Criegee intermediates (CIs). Direct studies have revealed that reactions involving simple CIs can significantly impact the tropospheric oxidizing capacity, enhance particulate formation, and degrade local air quality. Methyl vinyl ketone oxide (MVK-oxide) is a four-carbon, asymmetric, resonance-stabilized CI, produced with 21 to 23% yield from isoprene ozonolysis, yet its reactivity has not been directly studied. We present direct kinetic measurements of MVK-oxide reactions with key atmospheric species using absorption spectroscopy. Direct UV-Vis absorption spectra from two independent flow cell experiments overlap with the molecular beam UV-Vis-depletion spectra reported recently [M. F. Vansco, B. Marchetti, M. I. Lester, <i>J. Chem. Phys.</i> 149, 44309 (2018)] but suggest different conformer distributions under jet-cooled and thermal conditions. Comparison of the experimental lifetime herein with theory indicates only the <i>syn</i>-conformers are observed; <i>anti</i>-conformers are calculated to be removed much more rapidly via unimolecular decay. We observe experimentally and predict theoretically fast reaction of <i>syn</i>-MVK-oxide with SO<sub>2</sub> and formic acid, similar to smaller alkyl-substituted CIs, and by contrast, slow removal in the presence of water. We determine products through complementary multiplexed photoionization mass spectrometry, observing SO<sub>3</sub> and identifying organic hydroperoxide formation from reaction with SO<sub>2</sub> and formic acid, respectively. The tropospheric implications of these reactions are evaluated using a global chemistry and transport model.