Rusakova Irina L, Rusakov Yuriy Yu
A. E. Favorsky Irkutsk Institute of Chemistry, Siberian Branch of the Russian Academy of Sciences, Favorsky St. 1, Irkutsk, 664033, Russia.
Magn Reson Chem. 2020 Oct;58(10):929-940. doi: 10.1002/mrc.5058. Epub 2020 Jun 30.
Synthetic chalcogen-phosphorus chemistry permanently makes new challenges to computational Nuclear Magnetic Resonance (NMR) spectroscopy, which has proven to be a powerful tool of structural analysis of chalcogen-phosphorus compounds. This paper reports on the calculations of one-bond P Se and P Te NMR spin-spin coupling constants (SSCCs) in the series of phosphine selenides and tellurides. The applicability of the combined computational approach to the one-bond P Se and P Te SSCCs, incorporating the composite nonrelativistic scheme, built of high-accuracy correlated SOPPA (CC2) and Coupled Cluster Single and Double (CCSD) methods and the Density Functional Theory (DFT) relativistic corrections (four-component level), was examined against the experiment and another scheme based on the four-component relativistic DFT method. A special J-oriented basis set (acv3z-J) for selenium and tellurium atoms, developed previously by the authors, was used throughout the NMR calculations in this work at the first time. The proposed computational methodologies (combined and 'pure') provided a reasonable accuracy for P Se and P Te SSCCs against experimental data, characterizing by the mean absolute percentage errors of about 4% and 1%, and 12% and 8% for selenium and tellurium species, respectively. The present study reports typical relativistic corrections to Se P and Te P SSCCs, calculated within the four-component DFT formalism for a broad series of tertiary phosphine selenides and tellurides with different substituents at phosphorus.
合成硫属元素 - 磷化学不断给计算核磁共振(NMR)光谱带来新的挑战,而NMR光谱已被证明是分析硫属元素 - 磷化合物结构的有力工具。本文报道了膦硒化物和碲化物系列中一键PSe和PTe NMR自旋 - 自旋耦合常数(SSCCs)的计算。结合高精度相关SOPPA(CC2)和耦合簇单双激发(CCSD)方法以及密度泛函理论(DFT)相对论校正(四分量水平)构建的复合非相对论方案,用于一键PSe和PTe SSCCs的联合计算方法,与实验以及基于四分量相对论DFT方法的另一种方案进行了对比研究。作者之前开发的针对硒和碲原子的特殊J导向基组(acv3z - J),在本工作的NMR计算中首次被全程使用。所提出的计算方法(联合和“纯”方法)针对PSe和PTe SSCCs与实验数据相比提供了合理的准确度,对于硒和碲物种,平均绝对百分比误差分别约为4%和1%,以及12%和8%。本研究报道了在四分量DFT形式体系内,针对一系列在磷上具有不同取代基的叔膦硒化物和碲化物计算得到的SeP和TeP SSCCs的典型相对论校正。