Publication | Open Access
Warm Dense Matter Demonstrating Non-Drude Conductivity from Observations of Nonlinear Plasmon Damping
86
Citations
69
References
2017
Year
EngineeringMolecular DynamicsThermal ConductivityOptical PropertiesThermal ConductionPlasmonic MaterialMaterials SciencePhysicsPhysical ChemistryHse CalculationsNonlinear Plasmon DampingQuantum ChemistryElectrical PropertySolid-state PhysicPlasmonicsDynamic ConductivityNatural SciencesHigh-energy-density MatterApplied PhysicsCondensed Matter PhysicsWarm Dense Aluminum
We present simulations using finite-temperature density-functional-theory molecular dynamics to calculate the dynamic electrical conductivity in warm dense aluminum. The comparison between exchange-correlation functionals in the Perdew-Burke-Enzerhof and Heyd-Scuseria-Enzerhof (HSE) approximation indicates evident differences in the density of states and the dc conductivity. The HSE calculations show excellent agreement with experimental Linac Coherent Light Source x-ray plasmon scattering spectra revealing plasmon damping below the widely used random phase approximation. These findings demonstrate non-Drude-like behavior of the dynamic conductivity that needs to be taken into account to determine the optical properties of warm dense matter.
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