Modeling warm dense matter formation within tight binding approximation

被引:1
|
作者
Medvedev, Nikita [1 ,2 ]
机构
[1] Acad Sci Czech Republ, Inst Plasma Phys, Slovankou 1782-3, Prague 18200 8, Czech Republic
[2] Acad Sci Czech Republ, Inst Phys, Slovance 1999-2, Prague 18221 8, Czech Republic
来源
OPTICS DAMAGE AND MATERIALS PROCESSING BY EUV/X-RAY RADIATION VII | 2019年 / 11035卷
关键词
Transferable tight binding; Free-electron laser; XTANT; EXCITATION; ELECTRON;
D O I
10.1117/12.2520805
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
This contribution discusses challenges in modeling of formation of the warm dense matter (WDM) state in solids exposed to femtosecond X-ray free-electron laser pulses. It is based upon our previously reported code XTANT (X-ray-induced Thermal And Nonthermal Transition; N. Medvedev et. al, 4open 1, 3, 2018), which combines tight binding (TB) molecular dynamics for atoms with Monte Carlo modeling of high-energy electrons and core-holes, and Boltzmann collision integrals for nonadiabatic electron-ion coupling. The current version of the code, XTANT-3, includes LCAO basis sets sp(3), sp(3)s*, and sp(3)d(5), and can operate with both orthogonal and nonorthogonal Hamiltonians. It includes the TB parameterizations by Goodwin et al., a transferrable version of Vogl's et al. TB, NRL, and DFTB. Considering that other modules of the code are applicable to any chemical element, this makes XTANT-3 capable of treating a large variety of materials. In order to extend it to the WDM regime, a few limitations that must be overcome are discussed here: short-range repulsion potential must be sufficiently strong; basis sets must span large enough energy space within the conduction band; dependence of the electronic scattering cross sections on the electronic and atomic temperatures and structure needs to be considered. Directions at solving these issues are outlined in this proceeding.
引用
收藏
页数:9
相关论文
共 50 条
  • [1] Modeling of Half-Heusler Compound NiMnSb within Tight-Binding Approximation
    Sugiyanto
    Majidi, M. A.
    Nanto, D.
    INTERNATIONAL SYMPOSIUM ON CURRENT PROGRESS IN MATHEMATICS AND SCIENCES 2016 (ISCPMS 2016), 2017, 1862
  • [2] Excited electron dynamics modeling of warm dense matter
    Su, Julius T.
    Goddard, William A., III
    PHYSICAL REVIEW LETTERS, 2007, 99 (18)
  • [3] Stopping power modeling in warm and hot dense matter
    Gauthier, M.
    Blancard, C.
    Chen, S. N.
    Siberchicot, B.
    Torrent, M.
    Faussurier, G.
    Fuchs, J.
    HIGH ENERGY DENSITY PHYSICS, 2013, 9 (03) : 488 - 495
  • [4] Quantum Modeling of Electronic Charge Density in Warm Dense Matter
    Miloshevsky, Gennady
    Hassanein, Ahmed
    IEEE TRANSACTIONS ON PLASMA SCIENCE, 2014, 42 (10) : 2508 - 2509
  • [5] Formation of ion acoustic rogue waves in warm dense matter
    Mohammadnejad, M.
    Akbari-Moghanjughi, M.
    EUROPEAN PHYSICAL JOURNAL D, 2021, 75 (12):
  • [6] Formation of ion acoustic rogue waves in warm dense matter
    M. Mohammadnejad
    M. Akbari-Moghanjughi
    The European Physical Journal D, 2021, 75
  • [7] Negative Cauchy pressure within the tight-binding approximation
    Nguyen-Manh, D
    Pettifor, DG
    Znam, S
    Vitek, V
    TIGHT-BINDING APPROACH TO COMPUTATIONAL MATERIALS SCIENCE, 1998, 491 : 353 - 358
  • [8] Atomistic Modeling of Warm Dense Matter in the Two-Temperature State
    Norman, G. E.
    Starikov, S. V.
    Stegailov, V. V.
    Saitov, I. M.
    Zhilyaev, P. A.
    CONTRIBUTIONS TO PLASMA PHYSICS, 2013, 53 (02) : 129 - 139
  • [9] Effective Static Approximation: A Fast and Reliable Tool for Warm-Dense Matter Theory
    Dornheim, Tobias
    Cangi, Attila
    Ramakrishna, Kushal
    Boehme, Maximilian
    Tanaka, Shigenori
    Vorberger, Jan
    PHYSICAL REVIEW LETTERS, 2020, 125 (23)
  • [10] Plasmon resonance in warm dense matter
    Thiele, R.
    Bornath, T.
    Fortmann, C.
    Hoell, A.
    Redmer, R.
    Reinholz, H.
    Roepke, G.
    Wierling, A.
    Glenzer, S. H.
    Gregori, G.
    PHYSICAL REVIEW E, 2008, 78 (02):