Article ID Journal Published Year Pages File Type
5416062 Journal of Molecular Spectroscopy 2006 14 Pages PDF
Abstract
We report an ab initio calculation, at the MR-SDCI + Q + Erel/[Roos ANO (Fe), aug-cc-pVQZ (C, N)] level of theory, of the potential energy surface for 6Δi FeNC. From the ab initio results, we have computed values for the standard spectroscopic parameters of FeN12C and FeN13C. Analytical representations of the potential energy surfaces have been fitted through the ab initio points, and the resulting functions have been used for directly solving the rotation-vibration Schrödinger equation by means of the MORBID program and by means of an adiabatic-separation method. For 6Δi FeNC, our ab initio calculations show that the equilibrium structure is linear with re (Fe-N) = 1.9354 Å and re (N-C) = 1.1823 Å. We find that the bending potential is very shallow, and the MORBID calculations show that the zero-point averaged structure is bent with the expectation values 〈r (Fe-N)〉 = 1.9672 Å, 〈r(N-C)〉 = 1.1866 Å, and 〈ρ¯〉=180°-〈∠(Fe-N-C)〉=13°. The experimentally derived bond length r0 (N-C) = 1.03(8) Å reported for 6Δi FeNC by Lie and Dagdigian [J. Chem. Phys. 114 (2001) 2137-2143] is much shorter than the corresponding ab initio re-value and the averaged value from MORBID. Our calculations suggest that this discrepancy is caused by the inadequate treatment of the large-amplitude bending motion of 6Δi FeNC. It would appear that for floppy triatomic molecules such as FeNC, r0-values have little physical meaning, at least when they are determined with the effects of the large-amplitude bending motion being ignored, i.e., under the assumption that the r0 structure is linear.
Related Topics
Physical Sciences and Engineering Chemistry Physical and Theoretical Chemistry
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