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H-1 Chemical Shifts in Paramagnetic Co(II) Pyrazolylborate Complexes: A First-Principles Study

机译:顺磁性Co(II)吡唑基硼酸酯配合物的H-1化学位移:第一性原理研究

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摘要

We apply the theory of the nuclear magnetic resonance (NMR) chemical shift for paramagnetic systems to demanding cobalt(II) complexes. Paramagnetic NMR (pNMR) chemical shift results by density-functional theory (DFT) can be very far from the experimental values. Therefore, it is of interest to investigate the applicability of electron-correlated ab initio computational methods to achieve useful accuracy. Here, we use ab initio wave function based electronic structure methods to calculate the pNMR chemical shift within the theoretical framework established recently. We applied the N-electron valence-state perturbation theory (NEVPT2) on three Co(II) systems, where the active space of the underlying complete active space self-consistent field (CASSCF) wave function consists of seven electrons in the five metal 3d orbitals. These complexes have the S = 3/2 electronic ground state consisting of two doublets separated by zero-field splitting (ZFS). To calculate the hyperfine coupling tensor A, DFT was used, while the g- and ZFS-tensors were calculated using the ab initio CASSCF and NEVPT2 methods. These results were combined to obtain the total chemical shifts. The shifts obtained from these calculations are in generally good agreement with the experimental results, in some cases suggesting a reassignment of the signals. The accuracy of this mixed ab initio/DFT approach is very promising for further applications to demanding pNMR problems involving transition metals.
机译:我们将顺磁系统的核磁共振(NMR)化学位移理论应用于苛刻的钴(II)配合物。通过密度泛函理论(DFT)得出的顺磁NMR(pNMR)化学位移结果可能与实验值相去甚远。因此,研究电子相关的从头计算方法的实用性以达到有用的准确性是令人感兴趣的。在这里,我们使用从头算的波函数为基础的电子结构方法,在最近建立的理论框架内计算pNMR化学位移。我们在三个Co(II)系统上应用了N电子价态微扰理论(NEVPT2),其中底层完整有源空间自洽场(CASSCF)波函数的有源空间由五种金属3d中的七个电子组成轨道。这些复合物具有S = 3/2电子基态,该基态由被零场分裂(ZFS)隔开的两个双峰构成。为了计算超精细耦合张量A,使用了DFT,而使用从头开始的CASSCF和NEVPT2方法计算了g和ZFS张量。将这些结果合并以获得总化学位移。从这些计算中获得的偏移通常与实验结果非常吻合,在某些情况下建议重新分配信号。这种从头算/ DFT混合方法的准确性对于将其进一步应用到涉及过渡金属的要求苛刻的pNMR问题中非常有希望。

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