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Sensitivity of core-level spectroscopy to electrostatic environments of nitrile groups: An ab initio study
Author(s) -
Abid Hussain,
Nils Huse,
Oriol Vendrell
Publication year - 2017
Publication title -
structural dynamics
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.415
H-Index - 29
ISSN - 2329-7778
DOI - 10.1063/1.5003404
Subject(s) - chemistry , ab initio , electronic structure , dipole , nitrile , ab initio quantum chemistry methods , molecule , hydrogen bond , hydrogen atom , raman spectroscopy , molecular vibration , molecular physics , spectroscopy , atomic physics , computational chemistry , physics , group (periodic table) , organic chemistry , quantum mechanics , optics
Ab initio quantum chemistry calculations have been performed to probe the influence of hydrogen bonding on the electronic structure of hydrogen cyanide (HCN). Our calculations determine the origin of nitrogen-specific Raman spectral features from resonant inelastic X-ray scattering occurring in the presence of a water molecule and an electric dipole field. The similarity of the two interactions in altering the electronic structure of the nitrogen atom differs only in the covalent contributions from the water molecule. The CN stretching mode as a structural probe was also investigated to study the electronic origin of the anomalous frequency shift of the nitrile group when subjected to hydrogen bonding and an electrostatic dipole field. The major changes in the electronic structure of HCN are electrostatic in nature and originate from dipole-dipole interactions. The relative shifts of the CN stretching frequency are in good agreement with those experimentally observed.

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