We present a first principles molecular dynamics approach that is based on time-reversible extended Lagrangian Born-Oppenheimer molecular dynamics [A. M. N. Niklasson, Phys. Rev. Lett. 100, 123004 (2008)] in the limit of vanishing self-consistent field optimization. The optimization-free dynamics keeps the computational cost to a minimum and typically provides molecular trajectories that closely follow the exact Born-Oppenheimer potential energy surface. Only one single diagonalization and Hamiltonian (or Fockian) construction are required in each integration time step. The proposed dynamics is derived for a general free-energy potential surface valid at finite electronic temperatures within hybrid density functional theory. Even in the event of irregular functional behavior that may cause a dynamical instability, the optimization-free limit represents a natural starting guess for force calculations that may require a more elaborate iterative electronic ground state optimization. Our optimization-free dynamics thus represents a flexible theoretical framework for a broad and general class of ab initio molecular dynamics simulations.
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Naunyn Schmiedebergs Arch Pharmacol
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View Article and Find Full Text PDFAcc Chem Res
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Center for Molecular Spectroscopy and Dynamics, Institute for Basic Science, Seoul 02841, Korea.
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View Article and Find Full Text PDFJ Comput Chem
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Departmento de Química, Facultad de Ciencias, Universidad de Tarapacá, Arica, Chile.
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