Temperature-Dependent, Nitrogen-Perturbed Line Shape Measurements in the nu sub(1) + nu sub(3) Band of Acetylene Using a Diode Laser Referenced to a Frequency Comb

The P(11) line of the nu sub(1) + nu sub(3) combination band of C sub(2)H sub(2) was studied using an extended cavity diode laser locked to a frequency comb. Line shapes were measured for acetylene and nitrogen gas mixtures at a series of temperatures between 125 and 296 K and total pressures up to...

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Veröffentlicht in:The journal of physical chemistry. A, Molecules, spectroscopy, kinetics, environment, & general theory Molecules, spectroscopy, kinetics, environment, & general theory, 2013-02, Vol.117 (50), p.13908-13918-13908-13918
Hauptverfasser: Cich, Matthew J, thomme, Damien, McRaven, Christopher P, Lopez, Gary V, Hall, Gregory E, Sears, Trevor J, Mantz, ArlanW
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Sprache:eng
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Zusammenfassung:The P(11) line of the nu sub(1) + nu sub(3) combination band of C sub(2)H sub(2) was studied using an extended cavity diode laser locked to a frequency comb. Line shapes were measured for acetylene and nitrogen gas mixtures at a series of temperatures between 125 and 296 K and total pressures up to 1 atm. The data were fit to two speed-dependent line shape models and the results were compared. Line shape parameters were determined by simultaneously fitting data for all temperatures and pressures in a single multispectrum analysis. Earlier pure acetylene measurements [Cich et al. Appl. Phys. B 2012, 109, 373-38] were incorporated to account for self-perturbation. The resulting parameters reproduce the observed line shapes for the acetylene-nitrogen system over the range of temperatures and pressures studied with average root-mean-square observed-calculated errors of individual line measurement fits of approximately 0.01% of maximum transmission, close to the experimental signal-to-noise ratios. Errors in the pressure measurements constitute the major systematic errors in these measurements, and a statistical method is developed to quantify their effects on the line shape parameters for the present system.
ISSN:1089-5639
1520-5215
DOI:10.1021/jp408960e