Simulation of Proton Acceleration With Varying Laser Intensity in the Presence of Suprathermal Electrons

被引:0
|
作者
Dahi, E. [1 ]
Bara, D. [2 ]
Bennaceur-Doumaz, D. [2 ]
Liani, B. [1 ]
机构
[1] Univ Abou Bekr Belkaid Tlemcen, Lab Phys Theor, Tilimsen 13000, Algeria
[2] Ctr Dev Technol Avancees, Algiers 16303, Algeria
关键词
Protons; Plasmas; Ions; Lasers; Laser beams; Laser modes; Statistics; Laser proton acceleration; particle-in-cell (PIC) simulations; suprathermal electrons; ION-ACCELERATION; PLASMA; EXPANSION;
D O I
10.1109/TPS.2022.3140254
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
In the framework of high laser-plasma interaction, 1-D particle-in-cell (PIC) simulations are performed in order to optimize the role of electron suprathermality to generate high-quality proton beams useful for diverse applications, despite the presence of high nonlinear laser effects. For that, the electrons are supposed to obey the kappa distribution function discretized in the simulation code. Various characteristics of the proton beams, such as proton and electron densities, electric fields, front position, and energy spectra, have been analyzed as functions of electron suprathermality and laser amplitude. It is shown that, in the case of the presence of an important population of suprathermal electrons, the protons converge toward the same energy, leading to a quasi-monoenergetic beam and to good front position stability despite the presence of a large laser field. In addition, the two effects of electron suprathermality and laser intensity are added to enhance the proton acceleration. It turns out that in the analyzed range of laser intensities, the presence of the suprathermal electron population is beneficial for the proton acceleration process, which minimizes the nonlinear effects due to the laser field induced in high laser-plasma acceleration.
引用
收藏
页码:281 / 288
页数:8
相关论文
共 50 条
  • [11] Motion and acceleration of electrons in high-intensity laser standing waves
    张秋菊
    余玮
    栾仕霞
    马光金
    ChinesePhysicsB, 2012, 21 (01) : 171 - 176
  • [12] Motion and acceleration of electrons in high-intensity laser standing waves
    Zhang Qiu-Ju
    Yu Wei
    Luan Shi-Xia
    Ma Guang-Jin
    CHINESE PHYSICS B, 2012, 21 (01)
  • [13] ACCELERATION OF ELECTRONS BY MOVING INTENSITY MINIMA OF LASER FIELDS WITH DYNAMIC SUPERPOSITION
    CICCHITELLI, L
    HORA, H
    IEEE JOURNAL OF QUANTUM ELECTRONICS, 1990, 26 (10) : 1833 - 1837
  • [14] Acceleration of Solar Wind Suprathermal Electrons at the Earth's Bow Shock
    Liu, Zixuan
    Wang, Linghua
    Guo, Xinnian
    ASTROPHYSICAL JOURNAL, 2022, 935 (01):
  • [15] EC Radiative Transport in the Presence of Anisotropic Distributions of Suprathermal Electrons
    Albajar, F.
    Bornatici, M.
    Engelmann, F.
    EC-17 - 17TH JOINT WORKSHOP ON ELECTRON CYCLOTRON EMISSION AND ELECTRON CYCLOTRON RESONANCE HEATING, 2012, 32
  • [16] Role of Suprathermal Runaway Electrons Returning to the Acceleration Region in Solar Flares
    Alaoui, Meriem
    Holman, Gordon D.
    Allred, Joel C.
    Eufrasio, Rafael T.
    ASTROPHYSICAL JOURNAL, 2021, 917 (02):
  • [17] COLLECTIVE SCATTERING OF ELECTROMAGNETIC-WAVES IN THE PRESENCE OF SUPRATHERMAL ELECTRONS
    LONTANO, M
    TARTARI, U
    PLASMA PHYSICS AND CONTROLLED FUSION, 1989, 31 (12) : 1933 - 1943
  • [18] Collisionless electrostatic shock acceleration of proton using high intensity laser
    Ota, M.
    Morace, A.
    Kumar, R.
    Kambayashi, S.
    Egashira, S.
    Kanasaki, M.
    Fukuda, Y.
    Sakawa, Y.
    HIGH ENERGY DENSITY PHYSICS, 2019, 33
  • [19] Mechanism and control of high-intensity-laser-driven proton acceleration
    Lin, T
    Flippo, K
    Rever, M
    Maksimchuk, A
    Umstadter, D
    ADVANCED ACCELERATOR CONCEPTS, 2004, 737 : 595 - 601
  • [20] Dependence on laser intensity and pulse duration in proton acceleration using ultrafast laser pulse
    Nemoto, K.
    Oishi, Y.
    Wang, X.
    Nayuki, T.
    Fujii, T.
    Andreev, A. A.
    ICONO 2005: ULTRAFAST PHENOMENA AND PHYSICS OF SUPERINTENSE LASER FIELDS; QUANTUM AND ATOM OPTICS; ENGINEERING OF QUANTUM INFORMATION, 2006, 6256