Simulation of linear magnetron discharges in 2D and 3D

被引:31
|
作者
Pflug, Andreas [1 ]
Siemers, Michael [1 ]
Melzig, Thomas [1 ]
Schaefer, Lothar [1 ]
Braeuer, Giinter [1 ]
机构
[1] Fraunhofer Inst Surface Engn & Thin Films IST, D-38108 Braunschweig, Germany
来源
关键词
Magnetron sputtering; Particle-in-Cell Monte-Carlo; Plasma simulation; Plasma waves; PLASMA; COLLISIONS;
D O I
10.1016/j.surfcoat.2014.09.042
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
In spite of being an established thin film coating technology for more than two decades, magnetron sputtering is still a subject of many interesting research activities with respect to its process and plasma discharge dynamics. While the magnetically confined magnetron discharge apparently forms an almost homogeneous plasma torus at the sputter target, recent investigations of high density magnetron discharges by high speed photography reveal that it actually consists of one or multiple propagating plasma waves. With circulation frequencies of several 10 kHz, these features are usually not discerned in practical magnetron sputtering setups; however they should play a significant role in the electron and ion transport dynamics influencing both, the current-voltage characteristics and/or the resulting ion energy distribution function. In order to analyze this in more detail, a minimalist 2D magnetron discharge model with periodic boundary conditions is compared with its 3D equivalent via the Particle-in-Cell Monte-Carlo simulation method. Propagating plasma waves are obviously only possible in 3D models, while the 2D model represents the "ideal" homogenous plasma torus. Thus, by comparing both models with equivalent power density, the impact of the plasma waves on the electric transport properties of the plasma can be analyzed. (C) 2014 Elsevier B.V. All rights reserved.
引用
收藏
页码:411 / 416
页数:6
相关论文
共 50 条
  • [21] Study of 2D/3D mixed simulation based on ADAMS
    Wang, Li-Xin
    Huang, Wen-Liang
    Xitong Fangzhen Xuebao / Journal of System Simulation, 2005, 17 (08): : 2022 - 2024
  • [22] 21/2D or 3D?
    Roth, S
    Küster, B
    Sura, H
    KUNSTSTOFFE-PLAST EUROPE, 2004, 94 (07): : 65 - 67
  • [23] 2D and 3D on demand
    Philippi, Anne
    F & M; Feinwerktechnik, Mikrotechnik, Messtechnik, 1998, 106 (06): : 412 - 414
  • [24] From 2D to 3D
    Steven De Feyter
    Nature Chemistry, 2011, 3 (1) : 14 - 15
  • [25] 2D and 3D numerical simulation of fatigue crack growth path and life predictions of a linear elastic
    Bashiri, Abdullateef H.
    MATERIALS SCIENCE-POLAND, 2021, 39 (02) : 285 - 297
  • [26] CASTOR3D: linear stability studies for 2D and 3D tokamak equilibria
    Strumberger, E.
    Guenter, S.
    NUCLEAR FUSION, 2017, 57 (01)
  • [27] 2D and 3D Matrices to Study Linear Invadosome Formation and Activity
    Di Martino, Julie
    Henriet, Elodie
    Ezzoukhry, Zakaria
    Mondal, Chandrani
    Bravo-Cordero, Jose Javier
    Moreau, Violaine
    Saltel, Frederic
    JOVE-JOURNAL OF VISUALIZED EXPERIMENTS, 2017, (124):
  • [28] 3D linear stability analysis of 2D free surface flows
    Wilkes, ED
    Hopkins, M
    MOVING BOUNDARIES VII: COMPUTATIONAL MODELLING OF FREE AND MOVING BOUNDARY PROBLEMS, 2004, 10 : 209 - 214
  • [29] Enforcing Connectivity of 3D Linear Structures Using Their 2D Projections
    Oner, Doruk
    Osman, Hussein
    Kozinski, Mateusz
    Fua, Pascal
    MEDICAL IMAGE COMPUTING AND COMPUTER ASSISTED INTERVENTION, MICCAI 2022, PT V, 2022, 13435 : 591 - 601
  • [30] Deficiencies in 2D Simulation: A Comparative Study of 2D Versus 3D Simulation of Multi-seam Longwall Mining
    Deepak Adhikary
    Manoj Khanal
    Chandana Jayasundara
    Rao Balusu
    Rock Mechanics and Rock Engineering, 2016, 49 : 2181 - 2185