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  • 1
    ISSN: 1520-510X
    Source: ACS Legacy Archives
    Topics: Chemistry and Pharmacology
    Type of Medium: Electronic Resource
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  • 2
    Electronic Resource
    Electronic Resource
    College Park, Md. : American Institute of Physics (AIP)
    The Journal of Chemical Physics 87 (1987), S. 77-96 
    ISSN: 1089-7690
    Source: AIP Digital Archive
    Topics: Physics , Chemistry and Pharmacology
    Notes: This paper, the first in a series of three papers, gives a detailed account of our studies on picosecond photofragment spectroscopy. The unimolecular reaction NCNO→CN+NO is examined in detail here. Microcanonical state-to-state rates are measured in molecular beams at different energies in the reagent NCNO using pump–probe techniques: one picosecond pulse initiates the reaction from an initial (v,J) state and a second pulse, delayed in time, monitors the CN radical product in a specific rovibrational state, or the reagent NCNO (transient absorption). The threshold energy for reaction is determined to be 17 083 cm−1 (bond energy=48.8 kcal/mol). Measured rates are found to be sharply dependent on the total energy of the reagent, but independent of the rotational quantum state of product CN. Results of transient absorption measurements are used to argue that the ground state potential energy surface dominates the reaction in the range of excess energies studied. The energy dependence of the rates, kMC(E), is compared with that predicted by statistical theories. Both standard RRKM (tight transition state) and phase space theory (loose transition state) fail to reproduce the data over the full range of energies studied, even though nascent product state distributions are known to be in accord with PST at these energies. Furthermore, kMC(E) is not a strictly monotonically increasing function of energy but exhibits some structure which cannot be explained by simple statistical theories. We advance some explanations for this structure and deviations from statistical theories.
    Type of Medium: Electronic Resource
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  • 3
    Electronic Resource
    Electronic Resource
    College Park, Md. : American Institute of Physics (AIP)
    The Journal of Chemical Physics 87 (1987), S. 115-127 
    ISSN: 1089-7690
    Source: AIP Digital Archive
    Topics: Physics , Chemistry and Pharmacology
    Notes: This paper, last in this series, reports on the picosecond dynamics of vibrational predissociation in beam-cooled van der Waals' clusters. Reaction rates have been measured for clusters (1:1) of phenol and cresol (p-methylphenol) with benzene by the picosecond pump–probe photoionization mass-spectrometry technique. Dissociation to form phenol (cresol) and benzene takes place from vibrational levels of the S1 state of phenol (cresol) prepared by the pump laser. The predissociation rates were measured for a number of different excess energies upto ∼2500 cm−1, and the reaction threshold was found to be 1400 cm−1 above the S1 origin for phenol–benzene and ∼1795 cm−1 for cresol–benzene, respectively. For phenol–benzene, the predissociation rates, following excitation of ring-type modes, vs excess energy vary more or less smoothly. Cresol–benzene exhibits biexponential decay, with the fast component becoming more dominant at higher energies. A non-RRKM model involving division of the vibrational phase space is discussed to explain this observation.
    Type of Medium: Electronic Resource
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  • 4
    Electronic Resource
    Electronic Resource
    College Park, Md. : American Institute of Physics (AIP)
    The Journal of Chemical Physics 99 (1993), S. 38-46 
    ISSN: 1089-7690
    Source: AIP Digital Archive
    Topics: Physics , Chemistry and Pharmacology
    Notes: Vibronic spectra are measured for the ground, first excited, and ion ground state of 9,10-dihydrophenanthrene and each is dominated by a progression in a single vibrational mode. The ion vibrational spectrum is obtained using zero electron kinetic energy photoelectron spectroscopy (ZEKE-PES) and the I.P. is determined to be 63 645 cm−1. Semiempirical calculations including normal modes analysis were used to determine the vibrational motion responsible for the observed progression. The vibration is primarily a phenyl torsion, but is more complicated than a simple rigid motion. The specific shape of the potentials are determined from the frequencies of the observed vibrations and the relative shifts are obtained from a Franck–Condon analysis. The problem is solved using a one dimensional potential in the normal coordinate. A fluorescence depletion experiment is used to confirm the single-welled nature of the potential energy surfaces. The phenyl dihedral angles are found to be 18°, 6°, and 14° in the ground, S1, and cation ground electronic states, respectively.
    Type of Medium: Electronic Resource
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