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Discharge parameters and dominant electron conductivity mechanism in a low-pressure planar magnetron discharge
Author(s) -
Oleg Baranov,
M. Romanov,
Kostya Ostrikov
Publication year - 2009
Publication title -
physics of plasmas
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.75
H-Index - 160
eISSN - 1089-7674
pISSN - 1070-664X
DOI - 10.1063/1.3153554
Subject(s) - physics , ionization , electron , atomic physics , magnetic field , planar , cathode , conductivity , electric field , cavity magnetron , plasma , sputtering , ion , electrical engineering , nuclear physics , thin film , computer graphics (images) , quantum mechanics , computer science , engineering
Parameters of a discharge sustained in a planar magnetron configuration with crossed electric and magnetic fields are studied experimentally and numerically. By comparing the data obtained in the experiment with the results of calculations made using the proposed theoretical model, conclusion was made about the leading role of the turbulence-driven Bohm electron conductivity in the low-pressure operation mode (up to 1 Pa) of the discharge in crossed electric and magnetic fields. A strong dependence of the width of the cathode sputter trench, associated with the ionization region of the magnetron discharge, on the discharge parameters was observed in the experiments. The experimental data were used as input parameters in the discharge model that describes the motion of secondary electrons across the magnetic field in the ionization region and takes into account the classical, near-wall, and Bohm mechanisms of electron conductivity

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