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Observations of Dicke narrowing and speed dependence in air-broadened CO2 lineshapes near 2.06 μm
Author(s) -
Thinh Bui,
David A. Long,
Agata Cygan,
V. Sironneau,
Daniel W. Hogan,
P. M. Rupasinghe,
R. Ciuryło,
Daniel Lisak,
Mitchio Okumura
Publication year - 2014
Publication title -
the journal of chemical physics
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.071
H-Index - 357
eISSN - 1089-7690
pISSN - 0021-9606
DOI - 10.1063/1.4900502
Subject(s) - rotational–vibrational spectroscopy , line (geometry) , physics , range (aeronautics) , atomic physics , spectroscopy , voigt profile , computational physics , spectral line , optics , materials science , excited state , quantum mechanics , mathematics , composite material , geometry
Frequency-stabilized cavity ring-down spectroscopy was used to study CO2 lineshapes in the (20013) ← (00001) band centered near 2.06 μm. Two rovibrational transitions were chosen for this study to measure non-Voigt collisional effects for air-broadened lines over the pressure range of 7 kPa-28 kPa. Lineshape analysis for both lines revealed evidence of simultaneous Dicke (collisional) narrowing and speed-dependent effects that would introduce biases exceeding 2% in the retrieved air-broadening parameters if not incorporated in the modeling of CO2 lineshapes. Additionally, correlations between velocity- and phase/state changing collisions greatly reduced the observed Dicke narrowing effect. As a result, it was concluded that the most appropriate line profile for modeling CO2 lineshapes near 2.06 μm was the correlated speed-dependent Nelkin-Ghatak profile, which includes all of the physical effects mentioned above and leads to a consistent set of line shape parameters that are linear with gas pressure.

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