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Ab initio two-component Ehrenfest dynamics

  • Feizhi Ding
  • , Joshua J. Goings
  • , Hongbin Liu
  • , David B. Lingerfelt
  • , Xiaosong Li

Research output: Contribution to journalArticlepeer-review

32 Scopus citations

Abstract

We present an ab initio two-component Ehrenfest-based mixed quantum/classical molecular dynamics method to describe the effect of nuclear motion on the electron spin dynamics (and vice versa) in molecular systems. The two-component time-dependent non-collinear density functional theory is used for the propagation of spin-polarized electrons while the nuclei are treated classically. We use a three-time-step algorithm for the numerical integration of the coupled equations of motion, namely, the velocity Verlet for nuclear motion, the nuclear-position-dependent midpoint Fock update, and the modified midpoint and unitary transformation method for electronic propagation. As a test case, the method is applied to the dissociation of H2 and O2. In contrast to conventional Ehrenfest dynamics, this two-component approach provides a first principles description of the dynamics of non-collinear (e.g., spin-frustrated) magnetic materials, as well as the proper description of spin-state crossover, spin-rotation, and spin-flip dynamics by relaxing the constraint on spin configuration. This method also holds potential for applications to spin transport in molecular or even nanoscale magnetic devices.

Original languageEnglish
Article number114105
JournalJournal of Chemical Physics
Volume143
Issue number11
DOIs
StatePublished - Sep 21 2015

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