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A kinetic theory of planar plasma sheaths surrounding electron emitting surfaces | IEEE Conference Publication | IEEE Xplore

A kinetic theory of planar plasma sheaths surrounding electron emitting surfaces


Abstract:

It has long been known that electron emission from a surface significantly affects the sheath at that surface. Typical fluid theory of a planar sheath with emitted electr...Show More

Abstract:

It has long been known that electron emission from a surface significantly affects the sheath at that surface. Typical fluid theory of a planar sheath with emitted electrons assumes that the plasma electrons follow the Boltzmann relation and the emitted electrons are emitted with zero energy and predicts a potential drop of 1.03Te across the sheath at a floating boundary. By removing the assumption that all plasma electrons entering the sheath are reflected back into the bulk plasma (i.e. the Boltzmann relation) and considering electrons lost to the wall, we find that the predicted sheath potential is reduced to 0.91Te. Using a kinetic description of the emitted electrons, assuming a half Maxwellian distribution with temperature Tee, greatly affects the sheath potential. We show that kinetic theory predicts that the sheath potential significantly depends on the plasma to emitted electron temperature ratio. For example, we predict that an emissive probe (Tee = 0.2 eV) in a plasma with Te = 1eV will have a sheath potential of 0.51Te. Additionally, it is noted that the electron velocity distribution function in the sheath is unstable to the two-stream instability.
Date of Conference: 08-13 July 2012
Date Added to IEEE Xplore: 20 December 2012
ISBN Information:

ISSN Information:

Conference Location: Edinburgh, UK

It has long been known that electron emission from a surface significantly affects the sheath at that surface.1 Typical fluid theory of a planar sheath with emitted electrons assumes that the plasma electrons follow the Boltzmann relation and the emitted electrons are emitted with zero energy and predicts a potential drop of across the sheath at a floating boundary. By removing the assumption that all plasma electrons entering the sheath are reflected back into the bulk plasma (i.e. the Boltzmann relation) and considering electrons lost to the wall, we find that the predicted sheath potential is reduced to . Using a kinetic description of the emitted electrons, assuming a half Maxwellian distribution with temperature , greatly affects the sheath potential. We show that kinetic theory predicts that the sheath potential significantly depends on the plasma to emitted electron temperature ratio. For example, we predict that an emissive probe in a plasma with will have a sheath potential of . Additionally, it is noted that the electron velocity distribution function in the sheath is unstable to the two-stream instability.

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