skip to main content
OSTI.GOV title logo U.S. Department of Energy
Office of Scientific and Technical Information

Title: Computational study of the mechanisms for the reaction of O{sub 2}({sup 3}{Sigma}{sub g}) with aromatic radicals

Journal Article · · Journal of Physical Chemistry A: Molecules, Spectroscopy, Kinetics, Environment, amp General Theory
DOI:https://doi.org/10.1021/jp991692k· OSTI ID:20001104

The potential energy surface (PES) of the C{sub 6}H{sub 5}{sm{underscore}bullet} + O{sub 2}({sup 3}{Sigma}{sub g}) reaction has been studied using the B3LYP method. Several pathways were considered following the formation of the phenylperoxy (C{sub 6}H{sub 5}OO{sm{underscore}bullet}) radical. At low temperatures (T < 432 K), the lowest energy pathway was found to go through a dioxiranyl radical. Scission of the O-O bond to form the phenoxy (C{sub 6}H{sub 5}O{sm{underscore}bullet}) radical and O({sup 3}P) atom is more favorable at higher temperatures. Transition state structures for several steps in the decomposition of the phenylperoxy radical are presented to augment the C{sub 6}H{sub 5}{sm{underscore}bullet} + O{sub 2} PES. For the heteroatomic aromatic hydrocarbon radicals, such as pyridine, furan, and thiophene, only minima on the PES are calculated in analogy with the intermediates obtained for the reaction of phenyl radical with O{sub 2}. One important result of the proposed decomposition mechanism is that subsequent rearrangements of the heteroatomic aromatic hydrocarbon peroxy radicals (Ar-OO{sm{underscore}bullet}) are likely to yield intermediates that are of atmospheric interest.

Research Organization:
Ohio State Univ., Columbus, OH (US)
Sponsoring Organization:
USDOE
DOE Contract Number:
FG22-96PC96249
OSTI ID:
20001104
Journal Information:
Journal of Physical Chemistry A: Molecules, Spectroscopy, Kinetics, Environment, amp General Theory, Vol. 103, Issue 40; Other Information: PBD: 7 Oct 1999; ISSN 1089-5639
Country of Publication:
United States
Language:
English

Similar Records

C-H and N-H bond dissociation energies of small aromatic hydrocarbons
Journal Article · Wed Jan 27 00:00:00 EST 1999 · Journal of the American Chemical Society · OSTI ID:20001104

Computational study of the unimolecular decomposition pathways of phenylperoxy radical
Journal Article · Thu Apr 06 00:00:00 EDT 2000 · Journal of Physical Chemistry A: Molecules, Spectroscopy, Kinetics, Environment, amp General Theory · OSTI ID:20001104

Mechanism and kinetics of the oxidation of 1,3-butadien-1-yl (n-C4H5): a theoretical study
Journal Article · Sat Apr 03 00:00:00 EDT 2021 · Physical Chemistry Chemical Physics. PCCP · OSTI ID:20001104