The Journal of Chemical Physics · 2009 · 145 citations · 72 references
Quantum DynamicQuantum LiquidEngineeringLsc-ivr SimulationComputational ChemistrySimple LiquidMolecular DynamicsQuantum ComputingRing PolymerQuantum SimulationPolymer PhysicMolecular KineticsQuantum ScienceRpmd SimulationPhysicsCondensed Phase DynamicsPhysical ChemistryQuantum ChemistryLiquid WaterQuantum Simulation MethodsNatural SciencesApplied PhysicsCondensed Matter PhysicsPolymer Modeling
The approximate quantum mechanical ring polymer molecular dynamics (RPMD) and linearized semiclassical initial value representation (LSC-IVR) methods are compared and contrasted in a study of the dynamics of the flexible q-TIP4P/F water model at room temperature. For this water model, a RPMD simulation gives a diffusion coefficient that is only a few percent larger than the classical diffusion coefficient, whereas a LSC-IVR simulation gives a diffusion coefficient that is three times larger. We attribute this discrepancy to the unphysical leakage of initially quantized zero point energy (ZPE) from the intramolecular to the intermolecular modes of the liquid as the LSC-IVR simulation progresses. In spite of this problem, which is avoided by construction in RPMD, the LSC-IVR may still provide a useful approximation to certain short-time dynamical properties which are not so strongly affected by the ZPE leakage. We illustrate this with an application to the liquid water dipole absorption spectrum, for which the RPMD approximation breaks down at frequencies in the O-H stretching region owing to contamination from the internal modes of the ring polymer. The LSC-IVR does not suffer from this difficulty and it appears to provide quite a promising way to calculate condensed phase vibrational spectra.
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Path integrals in the theory of condensed helium
David M. Ceperley · Reviews of Modern Physics · 1995 · 2.4K citations