Electronic density response of warm dense matter

被引:45
|
作者
Dornheim, Tobias [1 ]
Moldabekov, Zhandos A. [1 ]
Ramakrishna, Kushal [1 ]
Tolias, Panagiotis [3 ]
Baczewski, Andrew D. [4 ]
Kraus, Dominik [2 ,5 ]
Preston, Thomas R. [6 ]
Chapman, David A. [7 ]
Boehme, Maximilian P. [1 ,2 ,8 ]
Doeppner, Tilo [9 ]
Graziani, Frank [9 ]
Bonitz, Michael [10 ]
Cangi, Attila [1 ]
Vorberger, Jan [2 ]
机构
[1] Ctr Adv Syst Understanding CASUS, D-02826 Corlitz, Germany
[2] Helmholtz Zent Dresden Rossendorf HZDR, D-01328 Dresden, Germany
[3] Royal Inst Technol KTH, Space & Plasma Phys, SE-10044 Stockholm, Sweden
[4] Sandia Natl Labs, Ctr Comp Res, Albuquerque, NM 87185 USA
[5] Univ Rostock, Institut Phys, D-18057 Rostock, Germany
[6] European XFEL, D-22869 Schenefeld, Germany
[7] First Light Fus, Yarnton OX5, Oxon, England
[8] Tech Univ Dresden, D-01062 Dresden, Germany
[9] Lawrence Livermore Natl Lab LLNL, Livermore, CA 94550 USA
[10] Christian Albrechts Univ Kiel, Inst Theoret Phys & Astrophys, D-24098 Kiel, Germany
关键词
EQUATION-OF-STATE; QUANTUM MONTE-CARLO; LOCAL-FIELD FACTOR; INERTIAL-CONFINEMENT FUSION; TOTAL-ENERGY CALCULATIONS; NONLINEAR STOPPING POWER; RAY THOMSON SCATTERING; TOSI-LAND-SJOLANDER; MANY-BODY SYSTEMS; PLASMON DISPERSION;
D O I
10.1063/5.0138955
中图分类号
O35 [流体力学]; O53 [等离子体物理学];
学科分类号
070204 ; 080103 ; 080704 ;
摘要
Matter at extreme temperatures and pressures-commonly known as warm dense matter (WDM)-is ubiquitous throughout our Universe and occurs in astrophysical objects such as giant planet interiors and brown dwarfs. Moreover, WDM is very important for technological applications such as inertial confinement fusion and is realized in the laboratory using different techniques. A particularly important property for the understanding of WDM is given by its electronic density response to an external perturbation. Such response properties are probed in x-ray Thomson scattering (XRTS) experiments and are central for the theoretical description of WDM. In this work, we give an overview of a number of recent developments in this field. To this end, we summarize the relevant theoretical background, covering the regime of linear response theory and nonlinear effects, the fully dynamic response and its static, time-independent limit, and the connection between density response properties and imaginary-time correlation functions (ITCF). In addition, we introduce the most important numerical simulation techniques, including path-integral Monte Carlo simulations and different thermal density functional theory (DFT) approaches. From a practical perspective, we present a variety of simulation results for different density response properties, covering the archetypal model of the uniform electron gas and realistic WDM systems such as hydrogen. Moreover, we show how the concept of ITCFs can be used to infer the temperature from XRTS measurements of arbitrary complex systems without the need for any models or approximations. Finally, we outline a strategy for future developments based on the close interplay between simulations and experiments.
引用
收藏
页数:41
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