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Geometrical Aspects of a Hollow-cathode Magnetron (HCM)
Author(s) -
A. Cohen Samuel,
‪Zhehui Wang
Publication year - 1998
Publication title -
osti oai (u.s. department of energy office of scientific and technical information)
Language(s) - English
Resource type - Reports
DOI - 10.2172/1771
Subject(s) - cathode , cavity magnetron , electron , ambipolar diffusion , diffusion , planar , atomic physics , materials science , ion , plasma , torr , physics , chemistry , sputtering , nanotechnology , thin film , nuclear physics , thermodynamics , computer graphics (images) , quantum mechanics , computer science
A hollow-cathode magnetron (HCM), built by surrounding a planar sputtering-magnetron cathode with a hollow-cathode structure (HCS), is operable at substantially lower pressures than its planar-magnetron counterpart. We have studied the dependence of magnetron operational parameters on the inner diameter D and length L of a cylindrical HCS. Only when L is greater than L sub zero, a critical length, is the HCM operable in the new low-pressure regime. The critical length varies with HCS inner diameter D. Explanations of the lower operational pressure regime, critical length, and plasma shape are proposed and compared with a one-dimension diffusion model for energetic or primary electron transport. At pressures above 1 mTorr, an electron-impact ionization model with Bohm diffusion at a temperature equivalent to one-half the primary electron energy and with an ambipolar constraint can explain the ion-electron pair creation required to sustain the discharge. The critical length L sub zero is determined by the magnetization length of the primary electrons

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