Experimental methods for warm dense matter research

被引:104
作者
Falk, Katerina [1 ,2 ]
机构
[1] Helmholtz Zentrum Dresden Rossendorf, Bautzner Landstr 400, D-01328 Dresden, Germany
[2] ASCR, Inst Phys, Na Slovance 1999-2, Prague 18221, Czech Republic
来源
HIGH POWER LASER SCIENCE AND ENGINEERING | 2018年 / 6卷
关键词
high pressure phases; laboratory astrophysics; lasers; planetary interiors; plasma physics; warm dense matter; MOLECULAR-DYNAMICS SIMULATIONS; RAY THOMSON SCATTERING; LASER-DRIVEN SHOCKS; EQUATION-OF-STATE; X-RAY; HIGH-PRESSURE; LIQUID DEUTERIUM; MAGNESIUM-OXIDE; POST-PEROVSKITE; FLUID HYDROGEN;
D O I
10.1017/hpl.2018.53
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
The study of structure, thermodynamic state, equation of state (EOS) and transport properties of warm dense matter (WDM) has become one of the key aspects of laboratory astrophysics. This field has demonstrated its importance not only concerning the internal structure of planets, but also other astrophysical bodies such as brown dwarfs, crusts of old stars or white dwarf stars. There has been a rapid increase in interest and activity in this field over the last two decades owing to many technological advances including not only the commissioning of high energy optical laser systems, z-pinches and X-ray free electron lasers, but also short-pulse laser facilities capable of generation of novel particle and X-ray sources. Many new diagnostic methods have been developed recently to study WDM in its full complexity. Even ultrafast nonequilibrium dynamics has been accessed for the first time thanks to subpicosecond laser pulses achieved at new facilities. Recent years saw a number of major discoveries with direct implications to astrophysics such as the formation of diamond at pressures relevant to interiors of frozen giant planets like Neptune, metallic hydrogen under conditions such as those found inside Jupiter's dynamo or formation of lonsdaleite crystals under extreme pressures during asteroid impacts on celestial bodies. This paper provides a broad review of the most recent experimental work carried out in this field with a special focus on the methods used. All typical schemes used to produce WDM are discussed in detail. Most of the diagnostic techniques recently established to probe WDM are also described. This paper also provides an overview of the most prominent examples of these methods used in experiments. Even though the main emphasis of the publication is experimental work focused on laboratory astrophysics primarily at laser facilities, a brief outline of other methods such as dynamic compression with z-pinches and static compression using diamond anvil cells (DAC) is also included. Some relevant theoretical and computational efforts related to WDM and astrophysics are mentioned in this review.
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