Weijo Ville, Bast Radovan, Manninen Pekka, Saue Trond, Vaara Juha
Laboratory of Physical Chemistry, Department of Chemistry, P.O. Box 55 (A.I. Virtasen aukio 1), University of Helsinki, FI-00014, Helsinki, Finland.
J Chem Phys. 2007 Feb 21;126(7):074107. doi: 10.1063/1.2436886.
We examine the quantum chemical calculation of parity-violating (PV) electroweak contributions to the spectral parameters of nuclear magnetic resonance (NMR) from a methodological point of view. Nuclear magnetic shielding and indirect spin-spin coupling constants are considered and evaluated for three chiral molecules, H2O2, H2S2, and H2Se2. The effects of the choice of a one-particle basis set and the treatment of electron correlation, as well as the effects of special relativity, are studied. All of them are found to be relevant. The basis-set dependence is very pronounced, especially at the electron correlated ab initio levels of theory. Coupled-cluster and density-functional theory (DFT) results for PV contributions differ significantly from the Hartree-Fock data. DFT overestimates the PV effects, particularly with nonhybrid exchange-correlation functionals. Beginning from third-row elements, special relativity is of importance for the PV NMR properties, shown here by comparing perturbational one-component and various four-component calculations. In contrast to what is found for nuclear magnetic shielding, the choice of the model for nuclear charge distribution--point charge or extended (Gaussian)--has a significant impact on the PV contribution to the spin-spin coupling constants.
我们从方法论的角度研究了违反宇称(PV)的电弱相互作用对核磁共振(NMR)光谱参数的量子化学计算。考虑并评估了三种手性分子H2O2、H2S2和H2Se2的核磁屏蔽和间接自旋-自旋耦合常数。研究了单粒子基组选择、电子相关处理以及狭义相对论效应。发现所有这些因素都很重要。基组依赖性非常显著,特别是在电子相关的从头算理论水平上。PV贡献的耦合簇和密度泛函理论(DFT)结果与Hartree-Fock数据有显著差异。DFT高估了PV效应,特别是使用非杂化交换-相关泛函时。从第三周期元素开始,狭义相对论对PV NMR性质很重要,通过比较微扰单分量和各种四分量计算可以看出。与核磁屏蔽的情况相反,核电荷分布模型(点电荷或扩展(高斯))的选择对PV对自旋-自旋耦合常数的贡献有显著影响。