Matter and Radiation at Extremes, Volume. 6, Issue 2, 026902(2021)
Thermal transport by electrons and ions in warm dense aluminum: A combined density functional theory and deep potential study
Fig. 1. Convergence of frequency-dependent electronic thermal conductivity
Fig. 2. Frequency-dependent Onsager kinetic coefficients (a)
Fig. 3. Frequency-dependent electronic thermal conductivity
Fig. 4. Convergence of frequency-dependent electronic thermal conductivity
Fig. 5. Convergence of the electronic thermal conductivity
Fig. 6. Density of states of a 256-atom cell at temperatures of (a) 0.5 eV and (b) 5.0 eV. The Fermi–Dirac function at the same temperature is plotted as a black solid line. The DP-OF model refers to the DP model trained from OFDFT molecular dynamics trajectories.
Fig. 7. Energy interval distribution function of different cells at (a) 0.5 eV and (b) 5.0 eV. Bands within 6.0 eV and 50.5 eV above the chemical potential
Fig. 8. (a) Energy interval distribution function and (b) electronic thermal conductivity of a 256-atom cell at 0.5 eV. The snapshots are from DPMD simulations. The DPMD model is trained from OFDFT trajectories with the PBE XC functional. Different line styles represent different values of the broadening parameter
Fig. 9. Electronic thermal conductivities
Fig. 10. Autocorrelation function of heat current
Fig. 11. Computed ionic thermal conductivity of warm dense Al at (a) 0.5 eV, (b) 1.0 eV, and (c) 5.0 eV for 12 different system sizes. The numbers of atoms per cell in these systems are
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Qianrui Liu, Junyi Li, Mohan Chen. Thermal transport by electrons and ions in warm dense aluminum: A combined density functional theory and deep potential study[J]. Matter and Radiation at Extremes, 2021, 6(2): 026902
Category: Radiation and Hydrodynamics
Received: Sep. 26, 2020
Accepted: Jan. 21, 2021
Published Online: Apr. 22, 2021
The Author Email: Mohan Chen (mohanchen@pku.edu.cn)