Resonances in the entrance channel of the elementary chemical reaction of fluorine and methane

Angew Chem Int Ed Engl. 2014 Jan 20;53(4):1122-6. doi: 10.1002/anie.201307822. Epub 2013 Dec 4.

Abstract

Extending the fully quantum-state-resolved description of elementary chemical reactions beyond three or four atom systems is a crucial issue in fundamental chemical research. Reactions of methane with F, Cl, H or O are key examples that have been studied prominently. In particular, reactive resonances and nonintuitive mode-selective chemistry have been reported in experimental studies for the F+CH4 →HF+CH3 reaction. By investigating this reaction using transition-state spectroscopy, this joint theoretical and experimental study provides a clear picture of resonances in the F+CH4 system. This picture is deduced from high-resolution slow electron velocity-map imaging (SEVI) spectra and accurate full-dimensional (12D) quantum dynamics simulations in the picosecond regime.

Keywords: ab initio calculations; molecular dynamics; photoelectron spectroscopy; potential-energy surfaces; van der Waals complexes.