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Giant spin-orbit effects on H-1 and C-13 NMR shifts for uranium(VI) complexes revisited: role of the exchange-correlation response kernel, bonding analyses, and new predictions

机译:重新审视铀(VI)配合物对H-1和C-13 NMR位移的巨大自旋轨道效应:交换相关响应核的作用,键合分析和新的预测

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摘要

Previous relativistic quantum-chemical predictions of unusually large H-1 and C-13 NMR chemical shifts for ligand atoms directly bonded to a diamagnetic uranium(VI) center (P. Hrobarik, V. Hrobarikova, A. H. Greif and M. Kaupp, Angew. Chem., Int. Ed., 2012, 51, 10884) have been revisited by two- and four-component relativistic density functional methods. In particular, the effect of the exchange-correlation response kernel, which had been missing in the previously used two-component version of the Amsterdam Density Functional program, has been examined. Kernel contributions are large for cases with large spin-orbit (SO) contributions to the NMR shifts and may amount to up to similar to 30% of the total shifts, which means more than a 50 ppm difference for the metal-bonded carbon shifts in some extreme cases. Previous calculations with a PBE-40HF functional had provided overall reasonable predictions, due to cancellation of errors between the missing kernel contributions and the enhanced exact-exchange (EXX) admixture of 40%. In the presence of an exchange-correlation kernel, functionals with lower EXX admixtures give already good agreement with experiments, and the PBE0 functional provides reasonable predictive quality. Most importantly, the revised approach still predicts unprecedented giant H-1 NMR shifts between +30 ppm and more than +200 ppm for uranium(VI) hydride species. We also predict uranium-bonded C-13 NMR shifts for some synthetically known organometallic U(VI) complexes, for which no corresponding signals have been detected to date. In several cases, the experimental lack of these signals may be attributed to unexpected spectral regions in which some of the C-13 NMR shifts can appear, sometimes beyond the usual measurement area. An extremely large uranium-bonded C-13 shift above 550 ppm, near the upper end of the diamagnetic C-13 shift range, is predicted for a known pincer carbene complex. Bonding analyses allow in particular the magnitude of the SO shifts, and of their dependence on the functional, on the ligand position in the complex, and on the overall electronic structure to be better appreciated, and improved confidence ranges for predicted shifts have been obtained.
机译:以前的相对论量子化学预测表明,直接与抗磁性铀(VI)中心键合的配体原子具有异常大的H-1和C-13 NMR化学位移(P.Hrobarik,V.Hrobarikova,AH Greif和M.Kaupp,Angew。 Chem。,Int。Ed。,2012,51,10884)已通过两组分和四组分相对论密度泛函方法进行了重新讨论。特别地,已经检查了交换相关响应内核的作用,该作用在以前使用的阿姆斯特丹密度功能程序的两组件版本中是不存在的。对于具有较大自旋轨道(SO)的NMR位移的情况,内核的贡献很大,并且可能总计高达总位移的30%,这意味着与金属键合的碳位移的差异大于50 ppm。一些极端的情况。先前使用PBE-40HF功能进行的计算已提供了总体上合理的预测,这是由于消除了丢失的内核成分与40%的增强的精确交换(EXX)混合物之间的错误所致。在存在交换相关内核的情况下,具有较低EXX混合物的功能与实验已经很好地吻合,而PBE0功能可提供合理的预测质量。最重要的是,修订后的方法仍然预测氢化铀(VI)物种在+30 ppm到+200 ppm以上的范围内出现前所未有的H-1 NMR巨变。我们还预测了一些合成已知的有机金属U(VI)配合物的铀键合C-13 NMR位移,迄今为止尚未检测到相应的信号。在某些情况下,这些信号的实验性缺乏可能归因于意想不到的光谱区域,其中某些C-13 NMR位移可能会出现,有时超出了通常的测量范围。对于已知的钳夹卡宾配合物,预测到在抗磁性C-13位移范围的上限附近,有一个非常大的铀键合的C-13位移高于550 ppm。键合分析尤其可以更好地理解SO位移的大小,以及它们对功能的依赖性,对复合物中配体位置以及对整个电子结构的依赖性,并且已经获得了预测的位移的改善的置信度范围。

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