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C6F5I 与一系列第 10 族金属单卤化物的卤键相互作用的理论研究。

A theoretical study on the halogen bonding interactions of C6F5I with a series of group 10 metal monohalides.

机构信息

Key Laboratory of Theoretical and Computational Chemistry in Universities of Shandong, School of Chemistry and Chemical Engineering, Shandong University, Jinan, Shandong, 250100, China.

出版信息

J Mol Model. 2013 Sep;19(9):3821-9. doi: 10.1007/s00894-013-1910-0. Epub 2013 Jun 25.

Abstract

The halogen bonding interactions between C6F5I and a series of transition metal monohalides trans-[M(X)(2-C5NF4)-(PR3)2] (M = Ni, Pd, Pt; X = F, Cl, Br; R = Me, Cy) have been studied with quantum chemical calculations. Optimized geometries of the halogen bonding complexes indicate that angles C1-I···X are basically linear (178-180°) and angles I···X-M mainly range from 90 to 150°. The strength of these metal-influenced halogen bonds alters with different metal centers, metal-bound halogen atoms and the substitutes on phosphine ligands. Electrostatic potential and natural bond orbital analysis show that both of the electrostatic and orbital interactions make a contribution to the formation of halogen bonds, while the electrostatic term plays a dominant role. AIM analysis suggests that, for trans-[M(F)(2-C5NF4)-(PR3)2] (M = Ni, Pd, Pt) monomers, the formed halogen bonding complexes are stabilized by local concentration of the charge of intermediate character, while for the metal monomers containing chlorine and bromine, a typical closed-shell interaction exist. These results prove that the structures and geometries of these halogen bonding complexes can be tuned by changing the halogen atoms and metal centers, which may provide useful information for the design and synthesis of new functional materials.

摘要

用量子化学计算研究了 C6F5I 与一系列过渡金属单卤化物 trans-[M(X)(2-C5NF4)-(PR3)2](M = Ni、Pd、Pt;X = F、Cl、Br;R = Me、Cy)之间的卤键相互作用。卤键配合物的优化几何结构表明,角度 C1-I···X 基本呈线性(178-180°),角度 I···X-M 主要在 90 到 150°之间。这些受金属影响的卤键的强度随不同的金属中心、金属结合的卤原子和膦配体上的取代基而变化。静电势和自然键轨道分析表明,静电和轨道相互作用都对卤键的形成有贡献,而静电项起主导作用。AIM 分析表明,对于 trans-[M(F)(2-C5NF4)-(PR3)2](M = Ni、Pd、Pt)单体,形成的卤键配合物通过中间电荷局部浓度稳定,而对于含有氯和溴的金属单体,则存在典型的闭壳相互作用。这些结果证明,这些卤键配合物的结构和几何形状可以通过改变卤原子和金属中心来调节,这可能为设计和合成新型功能材料提供有用的信息。

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