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The nature of bond critical points in dinuclear copper(I) complexes

机译:双核铜(I)配合物中键临界点的性质

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摘要

Closed-shell contacts between two copper(I) ions are expected to be repulsive. However, such contacts are quite frequent and are well documented. Crystallographic characterization of such contacts in unsupported and bridged multinuclear copper(I) complexes has repeatedly invited debates on the existence of cuprophilicity. Recent developments in the application of Bader's theory of atoms-in-molecules (AIM) to systems in which weak hydrogen bonds are involved suggests that the copper(I)-copper(I) contacts would benefit from a similar analysis. Thus the nature of electron-density distributions in copper(I) dimers that are unsupported, and those that are bridged, have been examined. A comparison of complexes that are dimers of symmetrical monomers and those that are dimers of two copper(I) monomers with different coordination spheres has also been made. AIM analysis shows that a bond critical point (BCP) between two Cu atoms is present in most cases. The nature of the BCP in terms of the electron density, ρ, and its Laplacian is quite similar to the nature of critical points observed in hydrogen bonds in the same systems. The ρ is inversely correlated to Cu-Cu distance. It is higher in asymmetrical systems than what is observed in corresponding symmetrical systems. By examining the ratio of the local electron potential-energy density (V _c) to the kinetic energy density (G _c), |V _c|/G _c at the critical point suggests that these interactions are not perfectly ionic but have some shared nature. Thus an analysis of critical points by using AIM theory points to the presence of an attractive metallophilic interaction similar to other well-documented weak interactions like hydrogen bonding. Mission critical: Bond critical points (BCP) in dimeric copper(I) complexes have been analyzed. The electron density and Laplacian in the BCPs are similar to those of the BCP in hydrogen bonds. The critical points show some shared character and are not completely ionic in nature (see figure). Electron density at the BCP is higher in asymmetrical dimers than in comparable symmetrical dimers.
机译:预计两个铜(I)离子之间的闭壳接触是排斥的。但是,此类联系非常频繁且有据可查。在无支撑和桥接的多核铜(I)络合物中此类接触的晶体学表征反复引起了有关嗜铜性的争论。将Bader分子内原子理论(AIM)应用于涉及弱氢键的系统的最新进展表明,铜(I)-铜(I)触点将受益于类似的分析。因此,已经研究了不被支持的和被桥接的铜(I)二聚体中电子密度分布的性质。还比较了对称单体的二聚体和具有不同配位球的两种铜(I)单体的二聚体的配合物。 AIM分析表明,在大多数情况下,两个铜原子之间存在键临界点(BCP)。 BCP的电子密度ρ及其拉普拉斯算子的性质与在相同系统中氢键中观察到的临界点的性质非常相似。 ρ与Cu-Cu距离成反比。在不对称系统中它比在相应对称系统中观察到的要高。通过检查局部电子势能密度(V _c)与动能密度(G _c)的比率,临界点的| V _c | / G _c表示这些相互作用不是完全离子化的,但具有某些共同的性质。因此,通过使用AIM理论对临界点进行的分析指出,存在着吸引人的嗜金属相互作用,类似于其他有据可查的弱相互作用,例如氢键。关键任务:已分析了二聚铜(I)配合物中的键临界点(BCP)。 BCP中的电子密度和拉普拉斯算子与氢键中的BCP相似。临界点显示出一些共有的特征,并且本质上不是完全离子化的(见图)。在不对称二聚体中,BCP处的电子密度高于在可比较的对称二聚体中。

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