High-resolution infrared and theoretical study of gaseous 1,2,5-selenadiazole in the 600-1400 cm range |
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Authors: | F. Hegelund R. Wugt Larsen M.H. Palmer |
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Affiliation: | a Department of Chemistry, University of Aarhus, DK-8000 Aarhus C, Denmark b Department of Chemistry, University of Copenhagen, Universitetsparken 5, DK-2100 Copenhagen OE, Denmark c School of Chemistry, University of St. Andrews, North Haugh, St. Andrews, Fife, KY16 9ST, Scotland, UK d School of Chemistry, University of Edinburgh, West Mains Road, Edinburgh, EH9 3JJ, Scotland, UK |
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Abstract: | The Fourier transform gas-phase IR spectrum of natural isotopic 1,2,5-selenadiazole, C2H2N2Se, has been recorded with a resolution of ca. 0.0025 cm−1 in the wavenumber region 600-1400 cm−1. The three a-type bands, ν2 (A1), ν4 (A1), ν5 (A1), the two b-type bands ν11 (B1), ν12 (B1), and the c-type band ν14 (B2) for each of the isotopologues C2H2N280Se and C2H2N278Se have been analyzed using the Watson model. Ground state rotational and quartic centrifugal distortion constants as well as upper state spectroscopic constants have been obtained from the fits. The rotational constants, harmonic and anharmonic frequencies, and vibration-rotation constants (alphas, ) have been predicted by quantum chemical calculations using a cc-pVTZ basis at the MP2 and B3LYP methodology levels, and compared with the present experimental data. Although the rotation constants are marginally closer to experiment from the MP2 calculations, in general the B3LYP frequencies and alphas are closer to experiment. |
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Keywords: | 1,2,5-Selenadiazole Infrared spectrum Rotational constants Vibrational frequencies Harmonic frequencies Anharmonic frequencies Equilibrium structure |
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