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A rotational Raman study under non-thermal conditions in a pulsed CO2 glow discharge

Authors :
Klarenaar, B.L.M.
Grofulović, M.
Morillo-Candas, A.S.
van den Bekerom, D.C.M.
Damen, M.A.
van de Sanden, M.C.M.
Guaitella, O.
Engeln, R.
Klarenaar, B.L.M.
Grofulović, M.
Morillo-Candas, A.S.
van den Bekerom, D.C.M.
Damen, M.A.
van de Sanden, M.C.M.
Guaitella, O.
Engeln, R.
Source :
Plasma Sources Science and Technology vol.27 (2018) date: 2018-04-25 nr.4 [ISSN 0963-0252]
Publication Year :
2018

Abstract

The implementation of in situ rotational Raman spectroscopy is realized for a pulsed glow discharge in CO2 in the mbar range and is used to study the rotational temperature and molecular number densities of CO2, CO, and O2. The polarizability anisotropy of these molecules is required for extracting number densities from the recorded spectra and is determined for incident photons of 532 nm. The spatiotemporally-resolved measurements are performed in the same reactor and at equal discharge conditions (5-10 ms on-off cycle, 50 mA plasma current, 6.7 mbar pressure) as in recently published work employing in situ Fourier transform infrared (FTIR) spectroscopy. The rotational temperature ranges from 394 to 809 K from start to end of the discharge pulse and is constant over the length of the reactor. The discharge is demonstrated to be spatially uniform in gas composition, with a CO2 conversion factor of 0.15 ± 0.02. Rotational temperatures and molecular composition agree well with the FTIR results, while the spatial uniformity confirms the assumption made for the FTIR analysis of a homogeneous medium over the line-of-sight of absorption. Furthermore, the rotational Raman spectra of CO2 are related to vibrational temperatures through the vibrationally averaged nuclear spin degeneracy, which is expressed in the intensity ratio between even and odd numbered Raman peaks. The elevation of the odd averaged degeneracy above thermal conditions agrees well with the elevation of vibrational temperatures of CO2, acquired in the FTIR study.

Details

Database :
OAIster
Journal :
Plasma Sources Science and Technology vol.27 (2018) date: 2018-04-25 nr.4 [ISSN 0963-0252]
Notes :
Klarenaar, B.L.M.
Publication Type :
Electronic Resource
Accession number :
edsoai.on1101184663
Document Type :
Electronic Resource