A Phase-Space View of Vibrational Energies without the Born-Oppenheimer Framework

Xuezhi Bian, Cameron Khan, Titouan Duston, Jonathan Rawlinson, Robert G. Littlejohn, Joseph E. Subotnik

Research output: Contribution to journalArticlepeer-review

2 Scopus citations

Abstract

We show that following the standard mantra of quantum chemistry and diagonalizing the Born-Oppenheimer (BO) Hamiltonian ĤBO(R) is not the optimal means to construct potential energy surfaces. A better approach is to diagonalize a phase-space electronic Hamiltonian, ĤPS(R, P), which is parameterized by both nuclear position R and nuclear momentum P. Such a nonperturbative phase-space electronic Hamiltonian can be constructed using a partial Wigner transform and the method has exactly the same cost as BO for a semiclassical calculation (and only a slight increase in cost for a quantum nuclear calculation). For a three-particle system, with two heavy particles and one light particle, numerical results show that a phase-space electronic Hamiltonian produces not only meaningful electronic momenta (which are completely ignored by BO theory) but also far better vibrational energies. As such, for high level results and/or systems with degeneracies and spin degrees of freedom, we anticipate that future electronic structure and quantum chemistry packages will need to take as input not just the positions of the nuclei but also their momenta.

Original languageEnglish (US)
Pages (from-to)2880-2893
Number of pages14
JournalJournal of Chemical Theory and Computation
Volume21
Issue number6
DOIs
StatePublished - Mar 25 2025

All Science Journal Classification (ASJC) codes

  • Computer Science Applications
  • Physical and Theoretical Chemistry

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