Polarizability of molecular clusters as calculated by a dipole interaction model

  • L. Jensen
  • , P. O. Astrand
  • , A. Osted
  • , J. Kongsted
  • , K. V. Mikkelsen

    Research output: Contribution to journalArticleAcademicpeer-review

    196 Citations (Scopus)
    663 Downloads (Pure)

    Abstract

    We have developed and investigated a dipole interaction model for calculating the polarizability of molecular clusters. The model has been parametrized from the frequency-dependent molecular polarizability as obtained from quantum chemical calculations for a series of 184 aliphatic, aromatic, and heterocyclic compounds. A damping of the interatomic interaction at short distances is introduced in such a way as to retain a traceless interaction tensor and a good description of the damping over a wide range of interatomic distances. By adopting atomic polarizabilities in addition to atom-type parameters describing the damping and the frequency dependence, respectively, the model is found to reproduce the molecular frequency-dependent polarizability tensor calculated with ab initio methods. A study of the polarizability of four dimers has been carried out: the hydrogen fluoride, methane, benzene, and urea dimers. We find in general good agreement between the model and the quantum chemical results over a wide range of intermolecular distances. To demonstrate the power of the model, the polarizability has been calculated for a linear chain of urea molecules with up to 300 molecules and one- and two-dimensional clusters of
    Original languageEnglish
    Pages (from-to)4001 - 4010
    Number of pages10
    JournalJournal of Chemical Physics
    Volume116
    Issue number10
    DOIs
    Publication statusPublished - 2002

    Keywords

    • AB-INITIO CALCULATIONS
    • NONLINEAR-OPTICAL-PROPERTIES
    • ATOM POLARIZABILITIES
    • ELECTRICAL RESPONSE
    • ORGANIC-MOLECULES
    • HYPERPOLARIZABILITIES
    • DIMER
    • FILMS
    • POLYACETYLENE
    • POTENTIALS

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