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On the E-H transition in inductively coupled radio frequency oxygen plasmas: I. Density and temperature of electrons, ground state and singlet metastable molecular oxygen

  • Abstract In this series of two papers, the E-H transition in a planar inductively coupled radio frequency discharge (13.56 MHz) in pure oxygen is studied using comprehensive plasma diagnostic methods. The electron density serves as the main plasma parameter to distinguish between the operation modes. The (effective) electron temperature, which is calculated from the electron energy distribution function and the difference between the floating and plasma potential, halves during the E-H transition. Furthermore, the pressure dependency of the RF sheath extension in the E-mode implies a collisional RF sheath for the considered total gas pressures. The gas temperature increases with the electron density during the E-H transition and doubles in the H-mode compared to the E-mode, whereas the molecular ground state density halves at the given total gas pressure. Moreover, the singlet molecular metastable density reaches 2% in the E-mode and 4% in the H-mode of the molecular ground state density. These measured plasma parameters can be used as input parameters for global rate equation calculations to analyze several elementary processes. Here, the ionization rate for the molecular oxygen ions is exemplarily determined and reveals, together with the optical excitation rate patterns, a change in electronegativity during the mode transition.

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Metadaten
Author: Theo Wegner, Christian Küllig, Julian Meichsner
URN:urn:nbn:de:gbv:9-opus-59185
DOI:https://doi.org/10.1088/1361-6595/26/2/025006
ISSN:0963-0252
ISSN:1361-6595
Parent Title (English):Plasma Sources Science and Technology
Publisher:IOP Publishing
Document Type:Article
Language:English
Date of first Publication:2017/01/19
Release Date:2022/10/28
Tag:Langmuir probe; inductively coupled plasma; microwave interferometry; mode transition; optical emission and absorption spectroscopy; oxygen
GND Keyword:-
Volume:26
Issue:2
Faculties:Mathematisch-Naturwissenschaftliche Fakultät / Institut für Physik
Collections:Artikel aus DFG-gefördertem Publikationsfonds
Licence (German):License LogoCreative Commons - Namensnennung