DocumentCode :
995670
Title :
A study of density in electron-cyclotron-resonance plasma
Author :
Uhm, Han S. ; Lee, Peung H. ; Kim, Yong I. ; Kim, Jung H. ; Chang, Hong Y.
Author_Institution :
Naval Surface Warfare Center, Silver Spring, MD, USA
Volume :
23
Issue :
4
fYear :
1995
fDate :
8/1/1995 12:00:00 AM
Firstpage :
628
Lastpage :
635
Abstract :
A theory is developed for the density profile of low temperature plasmas confined by applied magnetic field and an experiment of the electron-cyclotron-resonance (ECR) plasma is conducted to compare the theoretical prediction and experimental measurements. Due to a large electron mobility along the magnetic field, electrons move quickly out of the system, leaving ions behind and building a space charge potential, which leads to the ambipolar diffusion of ions. In a steady-state condition, the plasma generation by ionization of neutral molecules is in balance with plasma loss due to the diffusion, leading to the electron temperature equation, which is expressed in terms of the plasma size, chamber pressure, and the ionization energy and cross section of neutrals. The power balance condition leads to the plasma density equation, which is also expressed in terms of the electron temperature, the input microwave power and the chamber pressure. It is shown that the plasma density increases, reaches its peak and decreases, as the chamber pressure increases from a small value (0.1 mTorr). These simple expressions of electron temperature and density provide a scaling law of ECR plasma in terms of system parameters. After carrying out an experimental observation, it is concluded that the theoretical predictions of the electron temperature and plasma density agree remarkably well with experimental data
Keywords :
discharges (electric); high-frequency discharges; plasma density; plasma diagnostics; plasma temperature; space charge; applied magnetic field; chamber pressure; density; electron mobility; electron temperature equation; electron-cyclotron-resonance plasma; ion ambipolar diffusion; ionization energy; low temperature plasmas; neutral molecule ionization; neutrals cross section; plasma generation; plasma size; power balance; space charge potential; steady-state condition; Density measurement; Electron mobility; Equations; Ionization; Magnetic confinement; Magnetic field measurement; Plasma confinement; Plasma density; Plasma measurements; Plasma temperature;
fLanguage :
English
Journal_Title :
Plasma Science, IEEE Transactions on
Publisher :
ieee
ISSN :
0093-3813
Type :
jour
DOI :
10.1109/27.467984
Filename :
467984
Link To Document :
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