Physical Review Research · 2021 · 32 citations · 54 references
EngineeringComputational ChemistryWarm Dense MatterMolecular DynamicsCompetitive MechanismMolecular KineticsBiophysicsHydrodynamic DescriptionPhysicsAtomic PhysicsPhysical ChemistryIon DynamicsQuantum ChemistryAb-initio MethodNatural SciencesHigh-energy-density MatterHydrodynamicsApplied PhysicsIon Structure
Ion dynamics exhibits inherent multiscale characteristics because it contains both atomistic and hydrodynamic behaviors. Although atomic-scale ab initio molecular dynamics is the subject of intense research on warm dense matter, the macroscopic relaxation process contained in the zero-frequency mode of the ionic dynamic structure factor (DSF) cannot be demonstrated due to the limitation of simulation sizes. Here, we fill this gap via the machine-learning deep potential method. To capture the ion dynamics near the hydrodynamic limit with ab initio accuracy, an accurate and efficient electron-temperature-dependent interatomic potential was constructed. We quantitatively verify the consistency of thermal diffusivities obtained from hydrodynamics and the fluctuation-dissipation theorem and further provide a microscopic perspective of energy transport to understand the zero-frequency mode of DSF. As implemented in two temperature states, a competitive mechanism is found to account for the damping of the zero-frequency mode.
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