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18-氮杂冠醚-6 的构象分析及其与后一过渡系列二价金属的键合:来自 DFT 结合 NPA 和 QTAIM 分析的见解。

Conformational analysis of 18-azacrown-6 and its bonding with late first transition series divalent metals: insight from DFT combined with NPA and QTAIM analyses.

机构信息

Centre for Research in Molecular Modeling and Department of Chemistry & Biochemistry, Concordia University, Montréal, Québec, Canada.

出版信息

J Phys Chem A. 2011 Nov 17;115(45):13180-90. doi: 10.1021/jp206484m. Epub 2011 Sep 30.

DOI:10.1021/jp206484m
PMID:21961695
Abstract

Density functional theory calculations, together with quantum theory of atoms in molecules (QTAIM) analyses, have been performed to investigate 18-azacrown-6 complexes of the high-spin late first transition series divalent metal ions in the gas phase and, in some cases, in aqueous solution simulated by a polarizable continuum model. Six intramolecular H-H bonding interactions in the meso-complexes are found to arise from folding of the ligand upon its electrostatic interaction with the metal ions, which are largely absent in the lowest-energy C(2h) conformer of the free ligand. The ligand-to-metal charge transfer obtained from QTAIM analysis, among other things, is found to be an important factor that controls the stability of these complexes. The inter-relationship between the ligand preorganization energy, the zero-point corrected formation energy of the metal complexes, and the H-H bonding pair distances, as well as the dependence of the electron density and the total energy density at the H-H bond critical points on the H-H bonding pair distances, provides a physical basis for understanding and explaining the stabilizing nature of these closed-shell interactions, which are often viewed as steric clashes that lead to complex destabilization.

摘要

采用密度泛函理论计算和原子在分子中的量子理论(QTAIM)分析方法,研究了气相中和某些情况下通过极化连续模型模拟的水溶液中高自旋第一过渡系列二价金属离子的 18-氮杂冠-6 配合物。在介配合物中发现了六个分子内 H-H 键合相互作用,这是由于配体与金属离子的静电相互作用导致配体折叠所致,而在游离配体的最低能量 C(2h)构象中则基本不存在这些相互作用。从 QTAIM 分析得到的配体到金属的电荷转移,是控制这些配合物稳定性的一个重要因素。配体预组织能、金属配合物的零点校正形成能与 H-H 键合对距离之间的关系,以及 H-H 键临界点处的电子密度和总能量密度对 H-H 键合对距离的依赖性,为理解和解释这些通常被视为导致配合物不稳定的空间位阻冲突的封闭壳层相互作用的稳定性质提供了物理基础。

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