Published June 15, 2003 | Version v1
Journal article

Abatement of perfluorinated compounds using microwave plasmas at atmospheric pressure

  • 1. Groupe de Physique des Plasmas, Universite de Montreal, Montreal H3C 3J7, Quebec (Canada)
  • 2. Air Liquide Recherche et Developpement, Boite Postale 126 Les Loges-en-Josas, 78354 Jouy-en-Josas (France)
  • 3. EPM-Madylam, ENSHMG, 38402-St-Martin d'Heres (France)
  • 4. Groupe de Physique des Plasmas, Universite de Montreal, Montreal, H3C 3J7, Quebec (Canada)

Description

Microwave plasmas sustained at atmospheric pressure, for instance by electromagnetic surface waves, can be efficiently used to abate greenhouse-effect gases such as perfluorinated compounds. As a working example, we study the destruction and removal efficiency (DRE) of SF6 at concentrations ranging from 0.1% to 2.4% of the total gas flow where N2, utilized as a purge gas, is the carrier gas. O2 is added to the mixture at a fixed ratio of 1.2-1.5 times the concentration of SF6 to ensure full oxidation of the SF6 fragments, providing thereby scrubbable by-products. Fourier-transform infrared spectroscopy has been utilized for identification of the by-products and quantification of the residual concentration of SF6. Optical emission spectroscopy was employed to determine the gas temperature of the nitrogen plasma. In terms of operating parameters, the DRE is found to increase with increasing microwave power and decrease with increasing gas flow rate and discharge tube radius. Increasing the microwave power, in the case of a surface-wave discharge, or decreasing the gas flow rate increases the residence time of the molecules to be processed, hence, the observed DRE increase. In contrast, increasing the tube radius or the gas-flow rate increases the degree of radial contraction of the discharge and, therefore, the plasma-free space close to the tube wall: this comparatively colder region favors the reformation of the fragmented SF6 molecules, and enlarging it lowers the destruction rate. DRE values higher than 95% have been achieved at a microwave power of 6 kW with 2.4% SF6 in N2 flow rates up to 30 standard l/min

Additional details

Identifiers

Publishing Information

Journal Title
Journal of Applied Physics
Journal Volume
93
Journal Issue
12
Journal Page Range
p. 9483-9496
ISSN
0021-8979
CODEN
JAPIAU

Optional Information

Notes
(c) 2003 American Institute of Physics.