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揭示触觉:金属茂化学的实空间成键指标。

Hapticity uncovered: real-space bonding indicators for zincocene chemistry.

机构信息

Department of Chemistry, Humboldt-Universität zu Berlin, Brook-Taylor-Str. 2, 12489 Berlin, Germany.

出版信息

Chemistry. 2012 Sep 10;18(37):11647-61. doi: 10.1002/chem.201200870. Epub 2012 Aug 14.

Abstract

The connectivities (hapticities) of asymmetric cyclopentadienyl zinc compounds are determined by theoretically obtained real-space bonding descriptors. The methods employed herein include the determination of the number of virial paths and electron localizability indicator (ELI-D) basins exhibited between the central Zn atom and the atoms of the ring system. Metal-ring interactions are characterized by flat electron densities and small density gradients, which are related to the high fluxionality of the rings. Due to this, the structures are topologically unstable and the conventional bond-path analysis within the atoms in molecules (AIM) scheme, which in principle can also be applied for experimental electron densities reconstructed from high-resolution X-ray diffraction data, is not a reliable tool for the determination of the hapticity. As a consequence, the theoretical investigation of other real-space bonding descriptors is the necessary primary step for discovering bonding modes that can be applied to molecular geometries obtained by subsequent experiments. By this procedure the common geometrical interpretation of connectivities, which is based on rather arbitrary decisions, is complemented by a self-consistent method using electronic descriptors. Moreover, the two-center σ contributions of all possible bonding scenarios (η(1)-η(5)) were quantified by analyzing the electron populations of the Zn-C σ-bonding basins from the ELI-D analysis inside the AIM Zn atom in relation to the corresponding populations of the C-C π basins of the unsaturated rings. The investigation of the Zn-ring interactions is extended to the delocalization index, the source function, and a new type of electron-density-based surfaces, which we introduce here (ASF = aspherical stockholder fragments). They can be used for visualization of single atoms, fragments (e.g., functional groups), and whole molecules and are based on Hirshfeld's idea of stockholder partitioning, but apply aspherical electron densities. With these surfaces the charge accumulation between the chosen fragments and the steric accessibility of the central Zn atoms become visible, which is a useful tool for explaining and predicting chemical reactivity.

摘要

非对称环戊二烯基锌化合物的连接性(触觉性)由理论上获得的实空间成键描述符确定。本文采用的方法包括确定中心 Zn 原子与环系原子之间的 virial 路径数和电子局域化指标(ELI-D)盆地。金属-环相互作用的特征是平坦的电子密度和小的密度梯度,这与环的高流动性有关。由于这一点,结构在拓扑上不稳定,传统的键路径分析(AIM)方案中的原子内,该方案原则上也可以应用于从高分辨率 X 射线衍射数据重建的实验电子密度,不是确定触觉性的可靠工具。因此,对其他实空间成键描述符的理论研究是发现可应用于后续实验获得的分子几何形状的成键模式的必要初步步骤。通过这种程序,基于相当任意决策的常见连接性几何解释由使用电子描述符的自洽方法来补充。此外,通过分析从 AIM Zn 原子内的 ELI-D 分析获得的 Zn-C σ 键合盆地的电子布居与不饱和环的相应 C-C π 盆地的电子布居之间的所有可能成键情况(η(1)-η(5))的两个中心 σ 贡献进行量化。Zn-环相互作用的研究扩展到离域指数、源函数和一种新的基于电子密度的表面,我们在这里引入(ASF = 非球形股东碎片)。它们可用于单个原子、片段(例如功能基团)和整个分子的可视化,并且基于 Hirshfeld 的股东分区思想,但应用非球形电子密度。使用这些表面,可以看到所选片段之间的电荷积累和中心 Zn 原子的空间可及性,这是解释和预测化学反应性的有用工具。

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