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Ionization of cytosine monomer and dimer studied by VUV photoionization
and electronic structure calculations
O. Kostko, K.B. Bravaya, A.I. Krylov, and M. Ahmed Phys. Chem. Chem. Phys., submitted
(2009)
We report a combined theoretical and experimental study of ionization of cytosine monomers and dimers.
Gas-phase molecules are generated by thermal vaporization of cytosine followed by expansion of the
vapor in a continuous supersonic jet seeded in Ar. The resulting species are investigated by single photon
ionization with tunable vacuum-ultraviolet (VUV) synchrotron radiation and mass analyzed using
reflectron mass spectrometry. Energy onsets for the measured photoionization efficiency (PIE) spectra are
8.60+/-0.05 eV and 7.6+/-0.1 eV for the monomer and the dimer, respectively, and provide an estimate for
the adiabatic ionization energies (AIE). The first AIE and the ten lowest vertical ionization energies
(VIEs) for selected isomers of cytosine dimer computed using equation-of-motion coupled-cluster (EOMIP-
CCSD) method are reported. The comparison of the computed VIEs with the derivative of the PIE
spectra, suggests that multiple isomers of the cytosine dimer are present in the molecular beam. The
calculations reveal that the large red shift (0.7 eV) of the first IE of the lowest-energy cytosine dimer is
due to strong inter-fragment electrostatic interactions, i.e., the hole localized on one of the fragments is
stabilized by the dipole moment of the other. A sharp rise in the CH+ signal at 9.20+/-0.05 eV is ascribed to
the formation of protonated cytosine by dissociation of the ionized dimers. The dominant role of this
channel is supported by the computed energy thresholds for the CH+ appearance and the barrierless
ionization-induced proton transfer observed for five isomers of the dimer.
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