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探索分子“铁娘子”中超短 C-H···π 相互作用的奥秘。

Quest for Insight into Ultrashort C-H···π Proximities in Molecular "Iron Maidens".

机构信息

Departamento de Química , Universidade Federal de Santa Catarina, Campus Universitário Trindade , CP 476 , Florianópolis , Santa Catarina 88040-900 , Brazil.

Núcleo de Pesquisas em Ciências Exatas e Tecnológicas , Universidade de Franca , 14404-600 Franca , São Paulo , Brazil.

出版信息

J Org Chem. 2018 May 4;83(9):5114-5122. doi: 10.1021/acs.joc.8b00461. Epub 2018 Apr 25.

DOI:10.1021/acs.joc.8b00461
PMID:29659282
Abstract

Molecular iron maidens are a strained type of cyclophane in which a methine hydrogen, by the action of the bridges, is placed closer to the center of an aromatic ring. Such constrained molecular frameworks are in fact a noteworthy synthetic challenge. The present study provides a comprehensible theoretical analysis that elucidates unique structural and energetic aspects of this class of molecules, evaluating, in the light of quantum chemistry, both the influence of the aromatic moiety, from π-basic to π-acid, and the nature of the heteroatoms located at the bridges. Our results not only propose the shortest intramolecular centered C-H···π distance to date, which is supported by calculated H chemical shifts, but also shed light on the main factors that rationalize and justify such proximity. QTAIM, NBO, and NCI analyses allow us prematurely to conclude that the ultrashort C-H···π distance is sustained by an interplay between a large stabilizing electrostatic component with a non-negligible covalent character. However, the energetics involving such strained molecular scaffolds, addressed by means of isodesmic reactions, revealed that the C-H···π proximity is modulated mainly by the capacity of the bridges to support the strain imposed by the whole structure, hence compressing the C-H bond against the π-system.

摘要

分子铁娘子是一种应变型环芳烷,其中亚甲基氢在桥的作用下被放置在更靠近芳环中心的位置。这种受约束的分子框架实际上是一个值得注意的合成挑战。本研究提供了一个可理解的理论分析,阐明了这类分子的独特结构和能量方面,根据量子化学,评估了芳香部分从π-碱到π-酸的性质,以及位于桥中的杂原子的性质。我们的结果不仅提出了迄今为止最短的分子内中心 C-H···π 距离,这得到了计算的 H 化学位移的支持,而且还阐明了合理化和证明这种接近的主要因素。QTAIM、NBO 和 NCI 分析允许我们过早地得出结论,即超短 C-H···π 距离是由一个大的稳定静电分量和一个不可忽视的共价性质之间的相互作用来维持的。然而,通过等电子反应来解决的涉及这种应变分子支架的能量学表明,C-H···π 接近程度主要是由桥梁的能力来调节的,桥梁能够承受整个结构施加的应变,从而将 C-H 键压缩到π 系统上。

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