Measurements of He-collision-induced line-shape parameters of CO2 lines in the ν3 band

IF 2.3 3区 物理与天体物理 Q2 OPTICS
F. Hendaoui , D. Jacquemart , A. Hessani , B. Tremblay , H. Aroui , H. Tran
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引用次数: 0

Abstract

He-collision-induced line-shape parameters of CO2 lines were measured in the ν3 band using Fourier transform spectra recorded at room temperature and with pressures ranging from 263 mbar to 1106 mbar. The measured transmission spectra were analyzed with the Voigt profile combined with the first-order line-mixing approximation, accounting for the instrument line-shape function. The He-broadening coefficients, pressure shifts, and first-order line-mixing parameters were determined for 51 lines, from the P(50) to the R(51). The obtained He-broadening coefficients are in excellent agreement with various literature values. These broadening coefficients, together with data for higher J lines, extrapolated from available high-temperature measurements, allowed us to propose an improved dataset for He-broadening coefficients of CO2 lines. We demonstrated that accounting for line-mixing effects is essential to accurately determine the pressure shifts. The latter, measured for the first time for the ν3 band, exhibited a weak rotational dependence, in contrast to the strong dependence observed for air- and self-pressure shifts for CO2. The obtained line-mixing coefficients agree well with those calculated using the Energy Corrected Sudden model. The results of this study significantly enhance the line-shape parameters dataset for CO2 perturbed by He, providing improved data for spectroscopic databases and for studies of planetary and exoplanetary atmospheres.
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来源期刊
CiteScore
5.30
自引率
21.70%
发文量
273
审稿时长
58 days
期刊介绍: Papers with the following subject areas are suitable for publication in the Journal of Quantitative Spectroscopy and Radiative Transfer: - Theoretical and experimental aspects of the spectra of atoms, molecules, ions, and plasmas. - Spectral lineshape studies including models and computational algorithms. - Atmospheric spectroscopy. - Theoretical and experimental aspects of light scattering. - Application of light scattering in particle characterization and remote sensing. - Application of light scattering in biological sciences and medicine. - Radiative transfer in absorbing, emitting, and scattering media. - Radiative transfer in stochastic media.
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