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Benchmarking density functionals for hydrogen-helium mixtures with quantum Monte Carlo: Energetics, pressures, and forces

机译:量子蒙特卡洛法用于氢-氦混合物的基准密度泛函:能量学,压力和力

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摘要

An accurate understanding of the phase diagram of dense hydrogen and helium mixtures is a crucial component in the construction of accurate models of Jupiter, Saturn, and Jovian extrasolar planets. Though density-functional-theory-based first-principles methods have the potential to provide the accuracy and computational efficiency required for this task, recent benchmarking in hydrogen has shown that achieving this accuracy requires a judicious choice of functional, and a quantification of the errors introduced. In this work, we present a quantum Monte Carlo (QMC) -based benchmarking study of a wide range of density functionals for use in hydrogen-helium mixtures at thermodynamic conditions relevant for Jovian planets. Not only do we continue our program of benchmarking energetics and pressures, but we deploy QMC-based force estimators and use them to gain insight into how well the local liquid structure is captured by different density functionals. We find that TPSS, BLYP, and vdW-DF are the most accurate functionals by most metrics, and that the enthalpy, energy, and pressure errors are very well behaved as a function of helium concentration. Beyond this, we highlight and analyze the major error trends and relative differences exhibited by the major classes of functionals, and we estimate the magnitudes of these effects when possible.
机译:准确了解稠密的氢和氦混合物的相图是构建木星,土星和木星系太阳系外行星精确模型的关键组成部分。尽管基于密度泛函理论的第一原理方法有可能提供此任务所需的精度和计算效率,但最近在氢气中进行的基准测试表明,要达到此精度,需要明智地选择官能度并量化误差介绍。在这项工作中,我们提出了基于量子蒙特卡罗(QMC)的基准测试,该基准研究涉及与木星相关的热力学条件下的氢-氦混合物中广泛使用的密度泛函。我们不仅继续执行基准测试能量和压力的程序,而且部署基于QMC的力估算器,并使用它们来了解不同密度功能如何很好地捕获局部液体结构。我们发现TPSS,BLYP和vdW-DF是大多数度量标准中最准确的功能,并且焓,能量和压力误差与氦浓度的函数关系很好。除此之外,我们突出并分析了主要功能类别所表现出的主要误差趋势和相对差异,并在可能的情况下估计了这些影响的幅度。

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  • 来源
    《Physical review》 |2016年第3期|035121.1-035121.12|共12页
  • 作者单位

    Department of Physics, University of Illinois at Urbana-Champaign, Urbana, Illinois 61801, USA, Lawrence Livermore National Laboratory, Livermore, California 94550, USA;

    LPMMC, UMR 5493 of CNRS, Universite Grenoble Alpes, F-38100 Grenoble, France;

    Department of Physics, University of Illinois at Urbana-Champaign, Urbana, Illinois 61801, USA;

    Lawrence Livermore National Laboratory, Livermore, California 94550, USA;

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