PG-EAM - Graduate Program in Aeronautical and Mechanical Engineering
PT EN
Article 2003

Formation of electrostatic double-layers and electron-holes in a low pressure mercury plasma column

Authors

Maciel, Homero S.

Journal of Physics D Applied Physics , vol. 36 , no. 22 , pp. 2798-2805

ISSN: 00223727

16
Citations
2
Authors

Abstract

Experimental studies of the formation of electrostatic double layers (DLs) and electron-holes (e-holes) are reported. The measurements were performed in the positive column of a mercury arc discharge operating in the low-pressure range of (2.0-14.0) × 10-2 Pa with current density in the range of (3.0-8.0) × 103 A m-2. Stable and unstable modes of the discharge were identified as the current was gradually increased, keeping constant the vapour pressure. The discharge remains stable until a critical current from which a slight increase of the current leads to an unstable regime characterized by high discharge impedance and strong oscillations. This mode ceased after a DL was formed in the plasma column. To induce the DL formation and to transport it smoothly along the discharge column, a low intensity B -field (7-10) × 10-3 T produced by a movable single coil was used. The fi-field locally increases the electron current density and makes the DL form at the centre of the magnetic constriction where it remained at rest. Electrostatic potential structures compatible with ordinary DLs and multiple-layers could be formed in the plasma column by dealing with the combined effects of the operational parameters of the discharge. It is noticeable that a pure e-hole, which is a symmetric triple-layer having a bell shape potential profile, could easily be formed by means of this experimental technique. A partial kinetic description, based on the space charge structure derived from an experimental e-hole, is presented in order to infer the charged particle populations that could contribute to the space charge of the e-hole. Evidence is shown that strong e-hole formation might be driven by an ion beam, therefore it could not be formed in isolation since its formation requires a nearby ion accelerating potential structure. Probe measurements of the plasma properties, at various radial positions of the stable positive column, are also presented. In the stable mode, prior to current limitation, the probe data reveal a substantial radial decrease of the electron drift velocity. This result calls for a review of the free fall theories of low pressure plasma columns to take into account this non-uniformity of the electron drift velocity.

Electronic, Optical and Magnetic Materials (MATE) Condensed Matter Physics (PHYS) Acoustics and Ultrasonics (PHYS) Surfaces, Coatings and Films (MATE)
: Scopus
Last Update: 2026-06-25
: 2-s2.0-0344946237
PII: S0022372703594190