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Exciplex Stabilization in Asymmetric Acene Dimers.

Rachel A Krueger, Guillaume Blanquart

    The Journal of Physical Chemistry. A
    |February 12, 2019
    PubMed
    Summary

    Researchers calculated binding energies for mixed exciplexes of small acenes. Benzene-naphthalene and naphthalene-anthracene exciplexes showed moderate stabilization due to charge transfer and exciton delocalization.

    Area of Science:

    • Photochemistry
    • Computational Chemistry
    • Spectroscopy

    Background:

    • Excimers are crucial in photochemical processes like singlet fission and DNA damage.
    • Exciplex formation in mixed chromophore systems yields distinct spectral characteristics.
    • Understanding exciplexes informs about aggregate formation and chromophore orientation.

    Purpose of the Study:

    • To predict aggregation effects in mixed small acene systems.
    • To calculate binding energies and minimum-energy geometries for mixed S1 exciplexes.
    • To evaluate the performance of time-dependent density functional theory (TDDFT) functionals for exciplex calculations.

    Main Methods:

    • Utilized CASSCF/NEVPT2 multireference calculations for benchmark binding energies.
    • Employed TDDFT calculations with various exchange-correlation functionals.

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  • Investigated mixed exciplexes involving benzene, naphthalene, and anthracene.
  • Main Results:

    • Reported benchmark binding energies for benzene-naphthalene (18.2 kJ/mol), benzene-anthracene (27.7 kJ/mol), and naphthalene-anthracene (49.3 kJ/mol) exciplexes.
    • Observed inconsistent performance of TDDFT functionals, with errors dependent on monomer excitation character.
    • Found moderate exciplex stabilization in benzene-naphthalene and naphthalene-anthracene systems.

    Conclusions:

    • Mixed exciplex stabilization arises from a combination of charge transfer and exciton delocalization.
    • TDDFT accuracy for exciplexes is sensitive to the chosen functional and monomer excitation.
    • Computational methods are valuable for predicting exciplex behavior in complex molecular systems.