Particle-in-cell modeling of electron beam generated plasma

被引:9
|
作者
Rauf, Shahid [1 ]
Sydorenko, D. [2 ]
Jubin, S. [3 ]
Villafana, W. [3 ]
Ethier, S. [3 ]
Khrabrov, A. [3 ]
Kaganovich, I [3 ]
机构
[1] Appl Mat Inc, 3333 Scott Blvd, Santa Clara, CA 95054 USA
[2] Univ Alberta, Edmonton, AB T6G 2E9, Canada
[3] Princeton Plasma Phys Lab, 100 Stellarator Rd, Princeton, NJ 08543 USA
来源
PLASMA SOURCES SCIENCE & TECHNOLOGY | 2023年 / 32卷 / 05期
关键词
electron beam plasma; particle in cell; magnetized plasma; plasma modeling; atomic layer etch; atomic layer deposition; EMISSION;
D O I
10.1088/1361-6595/acd3a9
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
Plasmas generated using energetic electron beams are well known for their low electron temperature (T (e)) and plasma potential, which makes them attractive for atomic-precision plasma processing applications such as atomic layer etch and deposition. A 2-dimensional particle-in-cell model for an electron beam-generated plasma in argon confined by a constant applied magnetic field is described in this article. Plasma production primarily occurs in the path of the beam electrons in the center of the chamber. The resulting plasma spreads out in the chamber through non-ambipolar diffusion with a short-circuiting effect allowing unequal electron and ion fluxes to different regions of the bounding conductive chamber walls. The cross-field transport of the electrons (and thus the steady-state characteristics of the plasma) are strongly impacted by the magnetic field. T (e) is anisotropic in the electron beam region, but low and isotropic away from the plasma production zone. The plasma density increases and the plasma becomes more confined near the region of production when the magnetic field strengthens. The magnetic field reduces both electron physical and energy transport perpendicular to the magnetic field. T (e) is uniform along the magnetic field lines and slowly decreases perpendicular to it. Electrons are less energetic in the sheath regions where the sheath electric field repels and confines the low-energy electrons from the bulk plasma. Even though electron and ion densities are similar in the bulk plasma due to quasi-neutrality, electron and ion fluxes on the grounded chamber walls are unequal at most locations. Electron confinement by the magnetic field weakens with increasing pressure, and the plasma spread out farther from the electron beam region.
引用
收藏
页数:12
相关论文
共 50 条
  • [21] Particle-in-cell simulations of plasma accelerators and electron-neutral collisions
    Bruhwiler, DL
    Giacone, RE
    Cary, JR
    Verboncoeur, JP
    Mardahl, P
    Esarey, E
    Leemans, WP
    Shadwick, BA
    PHYSICAL REVIEW SPECIAL TOPICS-ACCELERATORS AND BEAMS, 2001, 4 (10): : 13 - 25
  • [22] Computational study of cathode plasma dynamics in high-power electron beam diodes by particle-in-cell simulations
    Luo, Wei
    Gu, Yu
    Zhang, Jianwei
    Qiang, Lanpeng
    He, Li
    Tang, Baoshan
    Wan, Quanzhen
    Wu, Kequan
    Guo, Yuyao
    Xing, Shilin
    Li, Yongdong
    Zhang, Pengfei
    Physics of Plasmas, 2024, 31 (10)
  • [23] Particle-in-cell Monte Carlo modeling of Langmuir probes in an Ar plasma
    Cenian, A. (cenian@imp.gda.pl), 1600, American Institute of Physics Inc. (97):
  • [24] Particle-in-cell Monte Carlo modeling of Langmuir probes in an Ar plasma
    Cenian, A
    Chemukho, A
    Bogaerts, A
    Gijbels, R
    Leys, C
    JOURNAL OF APPLIED PHYSICS, 2005, 97 (12)
  • [25] Numerical Modeling of Plasma Devices by the Particle-In-Cell Method on Unstructured Grids
    Dikalyuk A.S.
    Kuratov S.E.
    Mathematical Models and Computer Simulations, 2018, 10 (2) : 198 - 208
  • [26] A particle-in-cell Monte Carlo code for electron beam ion source simulation
    Zhao, L.
    Cluggish, B.
    Kim, J. S.
    Evstatiev, E. G.
    REVIEW OF SCIENTIFIC INSTRUMENTS, 2012, 83 (02):
  • [27] Particle-in-cell simulations of electron beam control using an inductive current divider
    Swanekamp, S. B.
    Angus, J. R.
    Cooperstein, G.
    Ottinger, P. F.
    Richardson, A. S.
    Schumer, J. W.
    Weber, B. V.
    PHYSICS OF PLASMAS, 2015, 22 (11)
  • [28] Particle-in-cell simulations of high-power cylindrical electron beam diodes
    Swanekamp, SB
    Commisso, RJ
    Cooperstein, G
    Ottinger, PF
    Schumer, JW
    PHYSICS OF PLASMAS, 2000, 7 (12) : 5214 - 5222
  • [29] MODELING ION BEAM NEUTRALIZATION WITH 3D PARTICLE-IN-CELL SIMULATIONS
    Han, Daoru
    Gatsonis, Nikolaos A.
    2017 IEEE INTERNATIONAL CONFERENCE ON PLASMA SCIENCE (ICOPS), 2017,
  • [30] Particle-in-cell simulation for experimental ion acceleration by fs laser-generated plasma
    Costa, G.
    Torrisi, L.
    RADIATION EFFECTS AND DEFECTS IN SOLIDS, 2019, 174 (11-12): : 985 - 997