Numerical modeling of laser tunneling ionization in particle-in-cell codes with a laser envelope model

被引:8
|
作者
Massimo, F. [1 ]
Beck, A. [1 ]
Derouillat, J. [2 ]
Zemzemi, I [1 ]
Specka, A. [1 ]
机构
[1] CNRS IN2P3, Ecole Polytech, Lab Leprince Ringuet, F-91128 Palaiseau, France
[2] Univ Paris Saclay, Univ Paris Sud, Maison Simulat, CEA,CNRS,UVSQ, F-91191 Gif Sur Yvette, France
关键词
WAKEFIELD ACCELERATION; INTENSE; PULSES; ELECTRONS; BEAMS;
D O I
10.1103/PhysRevE.102.033204
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
The resources needed for particle-in-cell simulations of laser wakefield acceleration can be greatly reduced in many cases of interest using an envelope model. However, the inclusion of tunneling ionization in this time-averaged treatment of laser-plasma acceleration is not straightforward, since the statistical features of the electron beams obtained through ionization should ideally be reproduced without resolving the high-frequency laser oscillations. In this context, an extension of an already known envelope ionization procedure is proposed, valid also for laser pulses with higher intensities, which consists in adding the initial longitudinal drift to the newly created electrons within the laser pulse ionizing the medium. The accuracy of the proposed procedure is shown with both linear and circular polarization in a simple benchmark where a nitrogen slab is ionized by a laser pulse and in a more complex benchmark of laser plasma acceleration with ionization injection in the nonlinear regime. With this addition to the envelope ionization algorithm, the main phase space properties of the bunches injected in a plasma wakefield with ionization by a laser (charge, average energy, energy spread, rms sizes, and normalized emittance) can be estimated with accuracy comparable to a nonenvelope simulation with significantly reduced resources, even in cylindrical geometry. Through this extended algorithm, preliminary studies of ionization injection in laser wakefield acceleration can be easily carried out even on a laptop.
引用
收藏
页数:17
相关论文
共 50 条
  • [31] Optimization of femtosecond laser processing of silicon via numerical modeling
    Taylor, Lauren L.
    Qiao, Jun
    Qiao, Jie
    OPTICAL MATERIALS EXPRESS, 2016, 6 (09): : 2745 - 2758
  • [32] Exploring laser-wakefield-accelerator regimes for near-term lasers using particle-in-cell simulation in Lorentz-boosted frames
    Martins, S. F.
    Fonseca, R. A.
    Lu, W.
    Mori, W. B.
    Silva, L. O.
    NATURE PHYSICS, 2010, 6 (04) : 311 - 316
  • [33] Multipeak envelope of the above-threshold-ionization energy spectrum in a strong circularly polarized laser field
    Bauer, Jaroslaw H.
    PHYSICAL REVIEW A, 2012, 85 (06):
  • [34] Laser wakefield simulation using a speed-of-light frame envelope model
    Cowan, B.
    Bruhwiler, D.
    Cormier-Michel, E.
    Esarey, E.
    Geddes, C. G. R.
    Messmer, P.
    Paul, K.
    ADVANCED ACCELERATOR CONCEPTS, 2009, 1086 : 309 - +
  • [35] Virtual Mie particle model of laser damage to optical elements
    Hirata, Kazuya
    Haraguchi, Koshi
    AIP ADVANCES, 2011, 1 (04):
  • [36] Comparison of numerical methods for modeling laser mode locking with saturable gain
    Wang, Shaokang
    Docherty, Andrew
    Marks, Brian S.
    Menyuk, Curtis R.
    JOURNAL OF THE OPTICAL SOCIETY OF AMERICA B-OPTICAL PHYSICS, 2013, 30 (11) : 3064 - 3074
  • [37] Numerical modeling of thermoelastic generation of ultrasound by laser irradiation in the coupled thermoelasticity
    Veres, Istvan A.
    Berer, Thomas
    Burgholzer, Peter
    ULTRASONICS, 2013, 53 (01) : 141 - 149
  • [38] Efficient start-to-end 3D envelope modeling for two-stage laser wakefield acceleration experiments
    Massimo, F.
    Beck, A.
    Derouillat, J.
    Grech, M.
    Lobet, M.
    Perez, F.
    Zemzemi, I
    Specka, A.
    PLASMA PHYSICS AND CONTROLLED FUSION, 2019, 61 (12)
  • [39] Numerical simulation of the double-to-single ionization ratio for the helium atom in strong laser fields
    Chen, Zhangjin
    Zheng, Yanyan
    Yang, Weifeng
    Song, Xiaohong
    Xu, Junliang
    DiMauro, L. F.
    Zatsarinny, Oleg
    Bartschat, Klaus
    Morishita, Toru
    Zhao, Song-Feng
    Lin, C. D.
    PHYSICAL REVIEW A, 2015, 92 (06):
  • [40] Numerical modeling of quantum beam generation from ultra-intense laser-matter interactions
    Nakamura, Tatsufumi
    Hayakawa, Takehito
    LASER AND PARTICLE BEAMS, 2015, 33 (02) : 151 - 155