Electron sheath evolution controlled by a magnetic field in modified hollow cathode glow discharge
R. Rane, S. Chauhan, P. Bharathi, K. Nigam, P. Bandyopadhyay, S., Mukherjee

TL;DR
This study investigates how magnetic fields influence electron sheath formation in a modified hollow cathode glow discharge, revealing the transition from ion to electron sheath and associated plasma parameter changes.
Contribution
It provides detailed experimental insights into the magnetic field-controlled transition from ion to electron sheath in a hollow cathode plasma, including diagnostics and spectral analysis.
Findings
Critical magnetic field depends on pressure and voltage.
Transition involves plasma potential dropping to argon ionization potential.
Oscillations occur after anode spot formation due to enhanced ionization.
Abstract
The electron sheath formation in a DC magnetised plasma of modified hollow cathode source is studied. The discharge consists of two plane parallel cathodes and a small cubical anode placed off axis at the center. The argon plasma is produced and the properties of the plasma in response to the sheath formation near the anode are studied using electrical and optical diagnostics. In particular, the effect of pressure, magnetic field on discharge parameters such as discharge current, plasma potential, plasma density and electron temperature is studied. The discharge showed an onset of anode glow at a critical applied magnetic field indicating the formation of electron sheath and a double layer. The discharge current initially decreases; however it starts to rise again as the anode spot appears on the anode. The critical magnetic field at which anode glow formation takes place is dependent…
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Taxonomy
TopicsPlasma Diagnostics and Applications · Electrohydrodynamics and Fluid Dynamics · Laser-induced spectroscopy and plasma
