Nonadiabatic couplings from a variational excited state method based on constrained DFT.

J Chem Phys

Department of Chemistry, Rutgers University, Newark, New Jersey 07102, USA.

Published: January 2021

AI Article Synopsis

  • XCDFT is a new computational method that extends traditional density functional theory (DFT) to calculate excited states, particularly targeting low-lying excited states by using a unique electron population constraint.
  • The study provides a theoretical framework and practical implementation for calculating nonadiabatic coupling vectors (NACVs) between excited and ground states, which is essential for understanding dynamics in quantum systems.
  • The pilot calculations demonstrate that XCDFT effectively reproduces benchmark results for certain chemical interactions, indicating its potential use for simulating nonadiabatic dynamics in various molecular systems.

Article Abstract

Excited Costrained Density Functional Theory (XCDFT) [Ramos and Pavanello, J. Chem. Phys. 148, 144103 (2018)] is a variational excited state method that extends ground state DFT to the computation of low-lying excited states. It borrows much of the machinery of Constrained DFT (CDFT) with a crucial difference: the constraint imposes a population of one electron in the Hilbert space spanned by the virtuals of a reference ground state. In this work, we present theory and implementation for evaluating nonadiabatic coupling vectors (NACVs) between the first excited state computed with XCDFT and the ground state. Our NACVs are computed analytically using density functional perturbation theory with a formalism that is general enough that could be applied to CDFT diabatic states. We showcase the new method with pilot NACV calculations for the conical intersection in H, the avoided crossing in selenoacrolein, and the NACV magnitudes in azobenzene. Despite complications from the nonorthogonality of the wavefunctions, XCDFT's energy surfaces and NACVs reproduce benchmark values and respect known sum rules within a reasonable degree. This shows that XCDFT is a viable method for nonadiabatic dynamics simulations.

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Source
http://dx.doi.org/10.1063/5.0028872DOI Listing

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