Plasma expansion towards an electrically insulated surface
Abstract
The problem of plasma expansion into a vacuum is revisited with the addition of a finite boundary condition; an electrically insulated surface. As plasma expands towards a charge-accumulating surface, the leading electron cloud charges the surface negatively, which in turn repels electrons and attracts ions. This plasma-surface interaction is shown to result in a feedback process which accelerates the plasma expansion. In addition, we examine the decrease in (negative) surface potential and associated near-surface electron density. To investigate this plasma coupling with an electrically floating surface, we develop an analytic model including four neighbouring plasma regions: (i) undisturbed plasma, (ii) quasi-neutral self-similar expansion, (iii) ion front boundary layer and (iv) electron cloud. A key innovation in our approach is a self-contained analytic approximation of the ion front boundary layer, providing a spatially continuous electric field model for the early phase of bounded plasma expansion.
- Publication:
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Journal of Plasma Physics
- Pub Date:
- April 2020
- DOI:
- 10.1017/S0022377820000148
- Bibcode:
- 2020JPlPh..86b9004R
- Keywords:
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- plasma nonlinear phenomena;
- plasma sheaths