What can we learn about laser-induced plasmas from Thomson scattering experiments

被引:35
|
作者
Dzierzega, K. [1 ]
Mendys, A. [1 ]
Pokrzywka, B. [2 ]
机构
[1] Uniwersytet Jagiellonski, Inst Fizyki M Smoluchowskiego, PL-30059 Krakow, Poland
[2] Uniwersytet Pedagogiczny, Obserwatorium Astron Suhorze, PL-30084 Krakow, Poland
关键词
Thomson scattering; Rayleigh scattering; Laser-induced plasma; Shock wave; Thermodynamic equilibrium; INDUCTIVELY-COUPLED PLASMAS; STATE DISTRIBUTION FUNCTION; THERMODYNAMIC-EQUILIBRIUM; EMISSION-SPECTROSCOPY; BREAKDOWN; ALUMINUM; SIGNAL; ARGON;
D O I
10.1016/j.sab.2014.03.010
中图分类号
O433 [光谱学];
学科分类号
0703 ; 070302 ;
摘要
This article describes laser Thomson scattering as applied to investigate laser-induced plasmas originating from gas breakdown or ablation of solid samples. Thomson scattering provides a reliable and direct mean of determining plasma electron density and electron temperature with high spatial and temporal resolution. Moreover, unlike e.g. optical emission spectroscopy, no assumptions about axial symmetry, thermodynamic conditions in the plasma or its chemical composition are needed to quantify these fundamental plasma parameters. Because Thomson scattering is inherently accompanied by Rayleigh light scattering, information about concentration of heavy particles and their temperature can be simultaneously derived from the experimental data. The heavy particle temperature and the electron one are the primary indicators of the plasma thermodynamic equilibrium. The goals of this article are to describe the theory of Thomson scattering relevant for the studies of lowtemperature laser-induced plasmas, discuss the instrumental details of Thomson scattering experiments, and review the results of studies in which this technique has been used to characterize laser-induced plasmas. (C) 2014 Elsevier B.V. All rights reserved.
引用
收藏
页码:76 / 86
页数:11
相关论文
共 50 条
  • [41] Investigations of laser-induced plasma in argon by Thomson scattering
    Mendys, A.
    Dzierzega, K.
    Grabiec, M.
    Pellerin, S.
    Pokrzywka, B.
    Travaille, G.
    Bousquet, B.
    SPECTROCHIMICA ACTA PART B-ATOMIC SPECTROSCOPY, 2011, 66 (9-10) : 691 - 697
  • [42] Thomson scattering from aluminum laser plasmas in air
    Liu, Yuan
    Bousquet, Bruno
    Richardson, Martin
    Baudelet, Matthieu
    2013 CONFERENCE ON LASERS AND ELECTRO-OPTICS (CLEO), 2013,
  • [43] What can We Learn about Atmospheric Meteor Ablation and Light Production from Laser Ablation?
    R. L. Hawkes
    E. P. Milley
    J. M. Ehrman
    R. M. Woods
    J. D. Hoyland
    C. L. Pettipas
    D. W. Tokaryk
    Earth, Moon, and Planets, 2008, 102 : 331 - 336
  • [44] What can we learn about atmospheric meteor ablation and light production from laser ablation?
    Hawkes, R. L.
    Milley, E. P.
    Ehrman, J. M.
    Woods, R. M.
    Hoyland, J. D.
    Pettipas, C. L.
    Tokaryk, D. W.
    EARTH MOON AND PLANETS, 2008, 102 (1-4): : 331 - 336
  • [45] What can we learn from it?
    Bogaerts, A
    Gijbels, R
    ANALYTICAL CHEMISTRY, 1997, 69 (23) : A719 - A727
  • [46] WHAT CAN WE LEARN FROM THAT
    JULIANO, C
    TRUESWELL, JC
    TANENHAUS, MK
    BULLETIN OF THE PSYCHONOMIC SOCIETY, 1992, 30 (06) : 473 - 473
  • [47] What Do We Learn about Voter Preferences from Conjoint Experiments?
    Abramson, Scott F.
    Kocak, Korhan
    Magazinnik, Asya
    AMERICAN JOURNAL OF POLITICAL SCIENCE, 2022, 66 (04) : 1008 - 1020
  • [48] WHAT CAN WE LEARN FROM EXPERIMENTS IN MULTIOBJECTIVE DECISION-ANALYSIS
    HOBBS, BF
    IEEE TRANSACTIONS ON SYSTEMS MAN AND CYBERNETICS, 1986, 16 (03): : 384 - 394
  • [49] Preferences for redistribution and pensions. What can we learn from experiments?
    Tausch, Franziska
    Potters, Jan
    Riedl, Arno
    JOURNAL OF PENSION ECONOMICS & FINANCE, 2013, 12 (03): : 298 - 325
  • [50] What can we learn on germinal centre reactions from in silico experiments?
    Meyer-Hermann, ME
    Beyer, T
    Soff, G
    IMMUNOLOGY 2004: GENOMIC ISSUES, IMMUNE SYSTEM ACTIVATION AND ALLERGY, 2004, : 271 - 274