Sriyarathne H Dushanee M, Ault Bruce S
Department of Chemistry, University of Cincinnati , P.O. Box 210172, Cincinnati, Ohio 45221-0172, United States.
J Phys Chem A. 2017 Oct 5;121(39):7335-7342. doi: 10.1021/acs.jpca.7b07723. Epub 2017 Sep 26.
The thermal reaction of ozone with trimethyl aluminum was explored using twin jet, concentric jet, and merged jet deposition into cryogenic matrixes. Infrared spectroscopy and density functional theory calculations were employed to identify and characterize the products formed in each case. Together, these deposition techniques provide information over the essentially full course of the gas-phase reaction. At short times with twin jet deposition, the primary product is the O atom insertion product (CH)AlOCH. With merged jet deposition and longer gas-phase mixing times, the methyl peroxy radical HCOO· was seen in good yield along with final stable products HCO, HCOH, and CH. Production of AlO and its deposition onto the walls of the reaction tube as a powdery film was noted as well. All of these outcomes were combined to propose a reaction mechanism for this system. Of particular note, the observation of HCOO· provides clear evidence for a free radical component to the overall mechanism.