Published March 1996 | Version v1
Journal article

Computational studies for a multiple-frequency electron cyclotron resonance ion source (abstract)

Creators

  • 1. Oak Ridge National Laboratory, Oak Ridge, Tennessee 37831-6368 (United States)

Description

The number density of electrons, the energy (electron temperature), and energy distribution are three of the fundamental properties which govern the performance of electron cyclotron resonance (ECR) ion sources in terms of their capability to produce high charge state ions. The maximum electron energy is affected by several processes including the ability of the plasma to absorb power. In principle, the performances of an ECR ion source can be realized by increasing the physical size of the ECR zone in relation to the total plasma volume. The ECR zones can be increased either in the spatial or frequency domains in any ECR ion source based on B-minimum plasma confinement principles. The former technique requires the design of a carefully tailored magnetic field geometry so that the central region of the plasma volume is a large, uniformly distributed plasma volume which surrounds the axis of symmetry, as proposed in Ref. . Present art forms of the ECR source utilize single frequency microwave power supplies to maintain the plasma discharge; because the magnetic field distribution continually changes in this source design, the ECR zones are relegated to thin open-quote open-quote surfaces close-quote close-quote which surround the axis of symmetry. As a consequence of the small ECR zone in relation to the total plasma volume, the probability for stochastic heating of the electrons is quite low, thereby compromising the source performance. This handicap can be overcome by use of broadband, multiple frequency microwave power as evidenced by the enhanced performances of the CAPRICE and AECR ion sources when two frequency microwave power was utilized. We have used particle-in-cell codes to simulate the magnetic field distributions in these sources and to demonstrate the advantages of using multiple, discrete frequencies over single frequencies to power conventional ECR ion sources. (Abstract Truncated)

Additional details

Publishing Information

Journal Title
Review of Scientific Instruments
Journal Volume
67
Journal Issue
3
Journal Page Range
p. 989.
ISSN
0034-6748
CODEN
RSINAK

Conference

Title
6. international conference on ion sources.
Dates
10-16 Sep 1995.
Place
Whistler (Canada).

Optional Information

Secondary number(s)
CONF-9509125--.