Physical Review Letters · 2003 · 128 citations · 13 references
EngineeringLaser ScienceLaser ApplicationsLaser AblationHomogeneous NucleationLaser MeltingMolecular DynamicsHigh-power LasersThermodynamicsLaser ExcitationPulsed Laser DepositionShort-pulse Laser MeltingMaterials SciencePhysicsPhysical ChemistryLaser Processing TechnologyLaser-assisted DepositionPressure RelaxationAdvanced Laser ProcessingLaser-induced BreakdownApplied PhysicsCondensed Matter PhysicsThin FilmsLaser Damage
The kinetics and microscopic mechanisms of laser melting of a thin metal film are investigated in a computational study that combines molecular dynamics simulations with a continuum description of the laser excitation and subsequent relaxation of the conduction band electrons. Two competing melting mechanisms, homogeneous nucleation of liquid regions inside the crystalline material and propagation of melting fronts from external surfaces, are found to be strongly affected by the dynamics of the relaxation of the laser-induced pressure.
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Electron and lattice dynamics following optical excitation of metals
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Atomic scale structure of sputtered metal multilayers
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Femtosecond X-ray measurement of coherent lattice vibrations near the Lindemann stability limit
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