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Sensitivity of core-level spectroscopy to electrostatic environments of nitrile groups: An ab initio study

机译:核心能级光谱对腈基静电环境的敏感性:从头算研究

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摘要

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.
机译:从头进行了量子化学计算,以探讨氢键对氰化氢(HCN)电子结构的影响。我们的计算从存在水分子和电偶极子场的共振非弹性X射线散射中确定了特定于氮的拉曼光谱特征的起源。改变氮原子电子结构的两种相互作用的相似性仅在于水分子的共价贡献不同。还研究了CN拉伸模式作为结构探针,以研究腈基在氢键和静电偶极场作用下的异常频移的电子起源。 HCN的电子结构的主要变化本质上是静电,并且源自偶极-偶极相互作用。 CN拉伸频率的相对位移与实验观察到的一致。

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