4.7 Article

Geometric integration in Born-Oppenheimer molecular dynamics

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JOURNAL OF CHEMICAL PHYSICS
卷 135, 期 22, 页码 -

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AMER INST PHYSICS
DOI: 10.1063/1.3660689

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  1. U.S. Department of Energy (DOE) through the LANL LDRD
  2. Vetenskapsradet (VR), SeRC
  3. Kungliga Vetenskapsakademien (KVA)

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Geometric integration schemes for extended Lagrangian self-consistent Born-Oppenheimer molecular dynamics, including a weak dissipation to remove numerical noise, are developed and analyzed. The extended Lagrangian framework enables the geometric integration of both the nuclear and electronic degrees of freedom. This provides highly efficient simulations that are stable and energy conserving even under incomplete and approximate self-consistent field (SCF) convergence. We investigate three different geometric integration schemes: (1) regular time reversible Verlet, (2) second order optimal symplectic, and (3) third order optimal symplectic. We look at energy conservation, accuracy, and stability as a function of dissipation, integration time step, and SCF convergence. We find that the inclusion of dissipation in the symplectic integration methods gives an efficient damping of numerical noise or perturbations that otherwise may accumulate from finite arithmetics in a perfect reversible dynamics. (C) 2011 American Institute of Physics. [doi: 10.1063/1.3660689]

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