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Structural transition dynamics of the formation of warm dense gold: From an atomic scale view 被引量:5

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摘要 With the highly optimized embedded-atom-method(EAM)potential and electron-phonon coupling factor obtained from experimental data,the dynamics of the formation of warm dense gold and the nuclear response of gold foils upon intense laser excitation were investigated using two-temperature molecular dynamics simulations.Considering laser energy densities ranging from 0.18 to 1.17 MJ/kg,we provide a microscopic picture of the formation of warm dense gold.A threshold(0.19 MJ/kg)for the laser energy density was determined,identifying two different melting mechanisms.For an energy density below 0.19 MJ/kg,the melting of the foil is controlled by the propagation of melt fronts from external surfaces,which results in heterogeneous melting on the time scale of hundreds of picoseconds.For an energy density above 0.19 MJ/kg,homogeneous nucleation and growth of liquid regions inside the foil play the leading role,and homogeneous melting occurs with several picoseconds.Compared with previous simulations and experimental measurements,the evaluated different threshold value indicates that the improvement in the electron heat capacity for the two-temperature model by including the kinetic information of electrons may predict better laser-matter interactions under such extreme non-equilibrium conditions.
机构地区 Department of Physics
出处 《Science China(Physics,Mechanics & Astronomy)》 SCIE EI CAS CSCD 2020年第6期33-41,共9页 中国科学:物理学、力学、天文学(英文版)
基金 supported by the National Key R&D Program of China(Grant No.2017YFA0403200) the National Natural Science Foundation of China(Grant No.11774429) the NSAF(Grant No.U1830206) the Science Challenge Project(Grant No.TZ2016001) the Science and Technology Project of Hunan Province(Grant No.2017RS3038).
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