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朝向多金属氧酸盐中 183W NMR 化学位移的精确计算:结构的相关性。

Towards the accurate calculation of 183W NMR chemical shifts in polyoxometalates: the relevance of the structure.

机构信息

Departament de Química Física i Inorgànica, Universitat Rovira i Virgili c/Marcellí Domingo s/n, 43007 Tarragona, Spain.

出版信息

Chem Asian J. 2010 Jan 4;5(1):97-104. doi: 10.1002/asia.200900263.

Abstract

DFT calculations were carried out to study (183)W NMR chemical shifts in the family of the Keggin anions with formula alpha-XW(12)O(40) (X=B, Al, Si, P, Ga, Ge, As, Zn), in the beta- and gamma-SiW(12)O(40) geometric isomers, in the derivative Dawson anion P(2)W(18)O(62), and in the most symmetrical Lindqvist W(6)O(19) anion and its derivative W(10)O(32). In this article, we show that the geometry employed in the calculation of NMR chemical shifts in polyoxotungstates is extremely important if we want to be quantitative. Using very large basis sets of QZ4P quality and taking into account the conductor-like screening model (COSMO) to account for solvent effects (aqueous and organic solutions), good geometries were found for the polyoxoanions. From these optimal geometries the (183)W NMR chemical shifts were computed with the more standard basis sets of TZP quality and including spin-orbit corrections inside the zero-order regular approximation (ZORA) to describe the relativistic effects of the internal electrons. With this strategy the mean absolute error between experimental and theoretical values was found to be less than 10 ppm, which is similar to the experimental error. We also discuss how the geometry of the polyoxoanion influences on the shielding.

摘要

采用密度泛函理论(DFT)计算研究了具有通式 alpha-XW(12)O(40)(X=B、Al、Si、P、Ga、Ge、As、Zn)的 Keggin 阴离子系列、β-和γ-SiW(12)O(40)几何异构体、 Dawson 阴离子P(2)W(18)O(62)和最对称的 Lindqvist W(6)O(19)阴离子及其衍生物W(10)O(32)中 (183)W NMR 化学位移。本文表明,如果我们想要定量计算多酸化合物中的 NMR 化学位移,所采用的几何结构极其重要。我们使用了 QZ4P 质量的非常大的基组,并考虑了导体屏蔽模型(COSMO)来考虑溶剂效应(水相和有机溶液),从而找到了多酸阴离子的最佳几何结构。从这些最佳几何结构出发,使用 TZP 质量的更标准基组并在零阶正则近似(ZORA)中包含自旋轨道校正来计算 (183)W NMR 化学位移,以描述内部电子的相对论效应。通过这种策略,实验值和理论值之间的平均绝对误差被发现小于 10 ppm,与实验误差相似。我们还讨论了多酸阴离子的几何结构如何影响屏蔽。

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