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Quantum Chemical Calculations of P-31 NMR Chemical Shifts in Nickel Complexes: Scope and Limitations

机译:镍复合物中P-31 NMR化学位移量的量子化学计算:范围和限制

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The scope and limitations of a simple approach for the P-31 NMR chemical shift calculations of phosphorus atoms directly involved in the formation of coordination bonds with Ni have been analyzed. A comparative analysis of calculated versus experimental P-31 NMR shifts for the wide range of model nickel complexes based on small/-medium-sized organophosphorus ligands was carried out. Several functional-basis set combinations were tested. In general, for neutral singlet Ni complexes based on sigma- and pi-type ligands the P-31 NMR shifts can be calculated quite well in the framework of the Kohn-Sham level of theory with hybrid functionals (PBE0, B3LYP, B97-2). In the case of charged complexes, the predictions are less accurate due to the inherent fluxionality of the systems. For complexes with triplet contamination this approach cannot be used. The most accurate results were reached with the PBE0/6-311G(2d,2p)//PBE0/6-31+G(d) combination (RMSE < 7 ppm), while the GGA type functionals showed the most unreliable results, particularly for the pi-donating phosphorus. There are only two examples where calculated values disagreed with experiment. In the first case of a three-coordinate nickel phosphinidene complex, although calculations reproduce the exceptional low-field shift, the qualitative agreement is worse; this may be due to the effects of high spin states and medium effects. In the second case, a dramatic disagreement between calculations and experiment is due to the incorrect establishment of the structure. On the basis of these calculations, the structure should be revised. Thus, we concluded that in Ni complexes the Kohn-Sham level calculations can be safely used to predict P-31 NMR shifts of directly coordinated phosphorus. Moreover, the approach allows for the assignment of challenging structures with several coordination types.
机译:已经分析了直接参与与Ni的配位键形成的P-31 NMR化学变换计算的简单方法的范围和限制。进行了基于小/介质尺寸的有机磷配体的各种模型镍复合物的计算的对比分析。测试了几种功能基组合组合。通常,对于基于Sigma-and Pi型配体的中性态态镍酯,可以在Kohn-Sham的框架与杂交功能(PBE0,B3LYP,B97-2)的框架内计算P-31 NMR偏移。 )。在充电复合物的情况下,由于系统的固有的血管性,预测性较低。对于具有三联污染的复合物,不能使用这种方法。用PBE0 / 6-311g(2D,2P)// PBE0 / 6-31 + G(D)组合(RMSE <7 ppm)达到最准确的结果,而GGA型功能显示出最不可靠的结果,特别是用于PI捐赠的磷。只有两个例子,计算值与实验不同意。在三坐标镍膦啶复合物的第一种情况下,虽然计算再现出卓越的低场换档,但定性协议更差;这可能是由于高旋转状态和中等效应的影响。在第二种情况下,计算和实验之间的显着分歧是由于结构不正确的结构。在这些计算的基础上,应修订结构。因此,我们得出结论,在Ni复合物中,可以安全地使用Kohn-Mham水平计算来预测直接协调的磷的P-31 NMR偏移。此外,该方法允许分配具有多种协调类型的具有挑战性的结构。

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