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    Coronene-uracil complexes embedded in argon matrices: FTIR spectroscopy and quantum-mechanical calculations

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    Author
    Stepanian, S.G.
    Ivanov, A.Y.
    Karachevtsev, V.A.
    Adamowicz, L.
    Affiliation
    Department of Chemistry and Biochemistry, University of Arizona
    Issue Date
    2021
    
    Metadata
    Show full item record
    Publisher
    American Institute of Physics Inc.
    Citation
    Stepanian, S. G., Ivanov, A. Y., Karachevtsev, V. A., & Adamowicz, L. (2021). Coronene-uracil complexes embedded in argon matrices: FTIR spectroscopy and quantum-mechanical calculations. Low Temperature Physics, 47(4), 325–334.
    Journal
    Low Temperature Physics
    Rights
    Copyright © 2021 Author(s). Published under license by AIP Publishing.
    Collection Information
    This item from the UA Faculty Publications collection is made available by the University of Arizona with support from the University of Arizona Libraries. If you have questions, please contact us at repository@u.library.arizona.edu.
    Abstract
    We employ low-temperature matrix-isolation FTIR spectroscopy and quantum chemical calculations to study the interaction between nucleobase uracil and coronene which models the graphene surface. To observe the dimer FTIR spectrum, we use a quartz microbalance that allows us to produce matrix samples with precisely determined concentrations of coronene and uracil (with the concentration ratio of 2.5:1:1000 for coronene:uracil:argon). The interaction between coronene and uracil results in spectral shifts of uracil spectral bands. These shifts do not exceed 10 cm−1. The maximum shifts are observed for the C=O stretching and NH out-of-plane vibrations of uracil. The structures and interaction energies of stacked and H-bonded coronene-uracil complexes are calculated at the DFT/B3LYP(GD3BJ)/aug-cc-pVDZ and MP2/aug-cc-pVDZ levels of theory. In total, 19 stable stacked and two H-bonded coronene-uracil dimer structures are found in the calculations. The interaction energy obtained for the most stable stacked dimer is −12.1 and −14.3 kcal/mol at the DFT and MP2 levels, respectively. The interaction energies of the H-bonded dimers do not exceed − 3 kcal/mol. The IR spectra of the studied monomeric molecules and of all the dimers are calculated at the DFT/B3LYP(GD3BJ)/aug-cc-pVDZ level of theory. The spectral shifts of the most stable stacked coronene-uracil dimer obtained in the calculations are in good agreement with the experimental results. © 2021 Author(s).
    Note
    12 month embargo; published online: 27 April 2021
    ISSN
    1063-777X
    DOI
    10.1063/10.0003745
    Version
    Final published version
    ae974a485f413a2113503eed53cd6c53
    10.1063/10.0003745
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    UA Faculty Publications

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