The infrared (IR) action spectrum of the doubly substituted methyl-ethyl Criegee intermediate (MECI) is observed in the CH stretch overtone region with detection of OH products. The MECI exhibits four conformers, all of which undergo unimolecular decay via a 1,4 H-atom transfer mechanism, followed by the rapid release of OH products. Conformers with different orientations of the carbonyl oxide group with respect to the methyl and ethyl substituents (i.e., anti and syn) decay via distinct transition state barriers (16.1 kcal mol−1 and 15.4 kcal mol−1, respectively). The observed IR action spectrum is in good agreement with the predicted anharmonic IR absorption spectrum, but exhibits significant congestion, which is attributed to couplings between spectroscopic bright states and nearby dark states. Energy-dependent OH appearance rates are measured upon IR excitation of the strongest features in the IR action spectrum and are found to be on the order of 106–107 s−1. The experimental rates are in good agreement with computed Rice–Ramsperger–Kassel–Marcus rates for the unimolecular decay of MECI at these energies, which incorporate quantum mechanical tunneling and sophisticated hindered rotor treatments, as well as high-level theoretical calculations of the TS barrier heights, rovibrational properties, and torsional barriers associated with the MECI conformers. Master equation modeling is used to predict thermal rates for the unimolecular decay of anti- and syn-MECI of 473 s−1 and 660 s−1, respectively. Comparison with other previously studied Criegee intermediate systems provides insights into substituent effects on unimolecular decay under both energy-dependent and thermal conditions.
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Experimental and theoretical studies of the doubly substituted methyl-ethyl Criegee intermediate: Infrared action spectroscopy and unimolecular decay to OH radical products
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7 March 2020
Research Article|
March 02 2020
Experimental and theoretical studies of the doubly substituted methyl-ethyl Criegee intermediate: Infrared action spectroscopy and unimolecular decay to OH radical products
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JCP Editors' Choice 2020
Victoria P. Barber
;
Victoria P. Barber
1
Department of Chemistry, University of Pennsylvania
, Philadelphia, Pennsylvania 19104-6323, USA
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Anne S. Hansen
;
Anne S. Hansen
1
Department of Chemistry, University of Pennsylvania
, Philadelphia, Pennsylvania 19104-6323, USA
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Yuri Georgievskii;
Yuri Georgievskii
2
Chemical Sciences and Engineering Division, Argonne National Laboratory
, Lemont, Illinois 60439, USA
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Stephen J. Klippenstein
;
Stephen J. Klippenstein
2
Chemical Sciences and Engineering Division, Argonne National Laboratory
, Lemont, Illinois 60439, USA
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Marsha I. Lester
Marsha I. Lester
a)
1
Department of Chemistry, University of Pennsylvania
, Philadelphia, Pennsylvania 19104-6323, USA
a)Author to whom correspondence should be addressed: [email protected]
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Victoria P. Barber
1
Anne S. Hansen
1
Yuri Georgievskii
2
Stephen J. Klippenstein
2
Marsha I. Lester
1,a)
1
Department of Chemistry, University of Pennsylvania
, Philadelphia, Pennsylvania 19104-6323, USA
2
Chemical Sciences and Engineering Division, Argonne National Laboratory
, Lemont, Illinois 60439, USA
a)Author to whom correspondence should be addressed: [email protected]
J. Chem. Phys. 152, 094301 (2020)
Article history
Received:
January 24 2020
Accepted:
February 11 2020
Citation
Victoria P. Barber, Anne S. Hansen, Yuri Georgievskii, Stephen J. Klippenstein, Marsha I. Lester; Experimental and theoretical studies of the doubly substituted methyl-ethyl Criegee intermediate: Infrared action spectroscopy and unimolecular decay to OH radical products. J. Chem. Phys. 7 March 2020; 152 (9): 094301. https://doi.org/10.1063/5.0002422
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