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Please use this identifier to cite or link to this item: https://dspace.ffh.bg.ac.rs/handle/123456789/325
Title: Electronic and vibrational spectroscopy of 1-methylthymine and its water clusters: the dark state survives hydration
Authors: Busker, Matthias
Nispel, Michael
Häber, Thomas
Kleinermanns, Karl
Etinski, Mihajlo 
Fleig, Timo
Keywords: Ab initio calculations;DNA;Photophysics vibrational spectroscopy;Water clusters
Issue Date: 4-Aug-2008
Journal: Chemphyschem : a European journal of chemical physics and physical chemistry
Abstract: 
Electronic and vibrational gas phase spectra of 1-methylthymine (1MT) and 1-methyluracil (1MU) and their clusters with water are presented. Mass selective IR/UV double resonance spectra confirm the formation of pyrimidine-water clusters and are compared to calculated vibrational spectra obtained from ab initio calculations. In contrast to Y. He, C. Wu, W. Kong; J. Phys. Chem. A, 2004, 108, 94 we are able to detect 1MT/1MU and their water clusters via resonant two-photon delayed ionization under careful control of the applied water-vapor pressure. The long-living dark electronic state of 1MT and 1MU detected by delayed ionization, survives hydration and the photostability of 1MT/1MU cannot be attributed solely to hydration. Oxygen coexpansions and crossed-beam experiments indicate that the triplet state population is probably small compared to the (1)n pi* and/or hot electronic ground state population. Ab initio theory shows that solvation of 1MT by water does not lead to a substantial modification of the electronic relaxation and quenching of the (1)n pi* state. Relaxation pathways via (1)pi pi*(1)-n pi*(1) and (1)pi pi*-S(0) conical intersections and barriers have been identified, but are not significantly altered by hydration.
URI: https://dspace.ffh.bg.ac.rs/handle/123456789/325
ISSN: 1439-4235
DOI: 10.1002/cphc.200800111
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University of Belgrade Faculty of Physical Chemistry