4.7 Article

Formulation of state projected centroid molecular dynamics: Microcanonical ensemble and connection to the Wigner distribution

Journal

JOURNAL OF CHEMICAL PHYSICS
Volume 146, Issue 21, Pages -

Publisher

AMER INST PHYSICS
DOI: 10.1063/1.4984229

Keywords

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Funding

  1. Natural Sciences and Engineering Research Council of Canada (NSERC), Ministry of Research and Innovation (MRI), Ontario
  2. Canada Research Chair program
  3. Canada Foundation for Innovation (CFI)
  4. Kettering University

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A derivation of quantum statistical mechanics based on the concept of a Feynman path centroid is presented for the case of generalized density operators using the projected density operator formalism of Blinov and Roy [J. Chem. Phys. 115, 7822-7831 (2001)]. The resulting centroid densities, centroid symbols, and centroid correlation functions are formulated and analyzed in the context of the canonical equilibrium picture of Jang and Voth [J. Chem. Phys. 111, 2357-2370 (1999)]. The case where the density operator projects onto a particular energy eigenstate of the system is discussed, and it is shown that one can extract microcanonical dynamical information from double Kubo transformed correlation functions. It is also shown that the proposed projection operator approach can be used to formally connect the centroid and Wigner phase-space distributions in the zero reciprocal temperature beta limit. A Centroid Molecular Dynamics (CMD) approximation to the state-projected exact quantum dynamics is proposed and proven to be exact in the harmonic limit. The state projected CMD method is also tested numerically for a quartic oscillator and a double-well potential and found to be more accurate than canonical CMD. In the case of a ground state projection, this method can resolve tunnelling splittings of the double well problem in the higher barrier regime where canonical CMD fails. Finally, the state-projected CMD framework is cast in a path integral form. Published by AIP Publishing.

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