4.7 Article

Parameterization of a linear vibronic coupling model with multiconfigurational electronic structure methods to study the quantum dynamics of photoexcited pyrene

Journal

JOURNAL OF CHEMICAL PHYSICS
Volume 154, Issue 10, Pages -

Publisher

AMER INST PHYSICS
DOI: 10.1063/5.0044693

Keywords

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Funding

  1. European Union's Horizon 2020 Research and Innovation Programme under Marie Sklodowska-Curie Grant [765266]
  2. Fundacion Ramon Areces (Spain)

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This study presents a protocol for parameterizing a Linear Vibronic Coupling (LVC) Hamiltonian for quantum dynamics using highly accurate multiconfigurational electronic structure methods and a maximum-overlap diabatization technique. The approach is applicable to medium-size rigid molecules requiring a quantum description of excited state dynamics. The model is shown to be very accurate and in good agreement with experimental data.
With this work, we present a protocol for the parameterization of a Linear Vibronic Coupling (LVC) Hamiltonian for quantum dynamics using highly accurate multiconfigurational electronic structure methods such as RASPT2/RASSCF, combined with a maximum-overlap diabatization technique. Our approach is fully portable and can be applied to many medium-size rigid molecules whose excited state dynamics requires a quantum description. We present our model and discuss the details of the electronic structure calculations needed for the parameterization, analyzing critical situations that could arise in the case of strongly interacting excited states. The protocol was applied to the simulation of the excited state dynamics of the pyrene molecule, starting from either the first or the second bright state (S-2 or S-5). The LVC model was benchmarked against state-of-the-art quantum mechanical calculations with optimizations and energy scans and turned out to be very accurate. The dynamics simulations, performed including all active normal coordinates with the multilayer multiconfigurational time-dependent Hartree method, show good agreement with the available experimental data, endorsing prediction of the excited state mechanism, especially for S-5, whose ultrafast deactivation mechanism was not yet clearly understood.

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