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Photodissociation transition states characterized by chirped pulse millimeter wave spectroscopy.

Kirill ProzumentJoshua H BarabanP Bryan ChangalaG Barratt ParkRachel G ShaverJohn S MuenterStephen J KlippensteinVladimir Y ChernyakRobert W Field
Published in: Proceedings of the National Academy of Sciences of the United States of America (2019)
The 193-nm photolysis of CH2CHCN illustrates the capability of chirped-pulse Fourier transform millimeter-wave spectroscopy to characterize transition states. We investigate the HCN, HNC photofragments in highly excited vibrational states using both frequency and intensity information. Measured relative intensities of J = 1-0 rotational transition lines yield vibrational-level population distributions (VPD). These VPDs encode the properties of the parent molecule transition state at which the fragment molecule was born. A Poisson distribution formalism, based on the generalized Franck-Condon principle, is proposed as a framework for extracting information about the transition-state structure from the observed VPD. We employ the isotopologue CH2CDCN to disentangle the unimolecular 3-center DCN elimination mechanism from other pathways to HCN. Our experimental results reveal a previously unknown transition state that we tentatively associate with the HCN eliminated via a secondary, bimolecular reaction.
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