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      Coupling electrons and vibrations in molecular quantum chemistry

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          Abstract

          We derive an electron-vibration model Hamiltonian in a quantum chemical framework, and explore the extent to which such a Hamiltonian can capture key effects of nonadiabatic dynamics. The model Hamiltonian is a simple two-body operator, and we make preliminary steps at applying standard quantum chemical methods to evaluating its properties, including mean-field theory, linear response, and a primitive correlated model. The Hamiltonian can be compared to standard vibronic Hamiltonians, but is constructed without reference to potential energy surfaces, through direct differentiation of the one- and two-electron integrals at a single reference geometry. The nature of the model Hamiltonian in the harmonic and linear-coupling regime is investigated for pyrazine, where a simple time-dependent calculation including electron-vibration correlation is demonstrated to exhibit the well-studied population transfer between the S\(_2\) and S\(_1\) excited states.

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          Author and article information

          Journal
          09 October 2020
          Article
          2010.04654
          798a1cf0-78d7-4f73-853c-240001c755c8

          http://arxiv.org/licenses/nonexclusive-distrib/1.0/

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          Custom metadata
          physics.chem-ph

          Physical chemistry
          Physical chemistry

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