Affiliation:
1. Leibniz Institute of Surface Engineering (IOM) 1 , Permoserstr. 15, 04318 Leipzig, Germany
2. Felix Bloch Institute of Solid State Physics, Leipzig University 2 , Linnéstr. 5, 04103 Leipzig, Germany
Abstract
Ever since they have been studied, gas discharges have been classified by their visual appearance as well as by their current and voltage levels. Glow and arc discharges are the most prominent and well-known modes of discharges involving electrodes. In a first approximation, they are distinguished by their current and voltage levels, and current–voltage characteristics are a common way to display their relations. In this review, glow discharges are defined by their individual electron emission mechanism such as secondary electron emission by photons and primary ions, and arcs by their respective collective mechanism such as thermionic or explosive electron emission. Emitted electrons are accelerated in the cathode sheath and play an important role in sustaining the discharge plasma. In some cases, however, electron emission is not important for sustaining the plasma, and consequently we have neither a glow nor an arc discharge but a third type of discharge, the ohmic discharge. In part 1 of this review, these relationships are explained for quasi-stationary discharges, culminating with updated graphical presentations of I–V characteristics (Figs. 15 and 16). In part 2, further examples are reviewed to include time-dependent discharges, discharges with electron trapping (hollow cathode, E×B discharges) and active anode effects.
Funder
Bundesministerium für Bildung und Forschung
Sächsisches Staatsministerium für Wissenschaft und Kunst
Reference375 articles.
1. Tracking down the origin of arc plasma physics. I Early pulsed and oscillating discharges;IEEE Trans. Plasma Sci.,2003
2. Experimental researches in electricity—thirteenth series;Philosoph. Trans. Roy. Soc. London,1838
3. The arc light. Lecture I, delivered January 14, 1895: Physics of the arc;J. Soc. Arts,1895