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Importance of finite-temperature exchange correlation for warm dense matter calculations

机译:有限温度交换相关性对热致密物质计算的重要性

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The effects of an explicit temperature dependence in the exchange correlation (XC) free-energy functional upon calculated properties of matter in the warm dense regime are investigated. The comparison is between the Karasiev-Sjostrom-Dufty-Trickey (KSDT) finite-temperature local-density approximation (TLDA) XC functional [Karasiev et al., Phys. Rev. Lett. 112, 076403 (2014)] parametrized from restricted path-integral Monte Carlo data on the homogeneous electron gas (HEG) and the conventional Monte Carlo parametrization ground-state LDA XC [Perdew-Zunger (PZ)] functional evaluated with T-dependent densities. Both Kohn-Sham (KS) and orbital-free density-functional theories are used, depending upon computational resource demands. Compared to the PZ functional, the KSDT functional generally lowers the dc electrical conductivity of low-density A1, yielding improved agreement with experiment. The greatest lowering is about 15% for T = 15 kK. Correspondingly, the KS band structure of low-density fcc Al from the KSDT functional exhibits a clear increase in interband separation above the Fermi level compared to the PZ bands. In some density-temperature regimes, the deuterium equations of state obtained from the two XC functionals exhibit pressure differences as large as 4% and a 6% range of differences. However, the hydrogen principal Hugoniot is insensitive to the explicit XC T dependence because of cancellation between the energy and pressure-volume work difference terms in the Rankine-Hugoniot equation. Finally, the temperature at which the HEG becomes unstable is T >= 7200 K for the T-dependent XC, a result that the ground-state XC underestimates by about 1000 K.
机译:研究了显式温度依赖性在交换相关(XC)自由能函数中对稠密热态下物质计算特性的影响。比较是在Karasiev-Sjostrom-Dufty-Trickey(KSDT)有限温度局部密度近似(TLDA)XC函数之间进行的[Karasiev et al。,Phys。牧师[112,076403(2014)]是根据均质电子气(HEG)的受限路径积分Monte Carlo数据和传统的Monte Carlo参数化基态LDA XC [Perdew-Zunger(PZ)]函数进行了参数化,并通过T依赖密度进行了评估。根据计算资源需求,同时使用Kohn-Sham(KS)和无轨道密度函数理论。与PZ功能相比,KSDT功能通常会降低低密度A1的直流电导率,从而与实验相符。对于T = 15 kK,最大降低约为15%。相应地,来自KSDT官能团的低密度fcc Al的KS能带结构与PZ能带相比在费米能级以上的能带间分离表现出明显的增加。在某些密度-温度范围内,从两种XC官能团获得的氘态方程显示出高达4%的压力差和6%的差值范围。但是,由于朗肯-休格尼奥特方程中的能量和压力-体积功差项之间的抵消,氢主休格尼奥特对显式XC T依赖性不敏感。最后,对于依赖T的XC,HEG不稳定的温度为T> = 7200 K,结果基态XC低估了约1000K。

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