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影响碳族元素键强度的因素的系统阐释

Systematic Elucidation of Factors That Influence the Strength of Tetrel Bonds.

作者信息

Scheiner Steve

机构信息

Department of Chemistry and Biochemistry, Utah State University , Logan, Utah 84322-0300, United States.

出版信息

J Phys Chem A. 2017 Jul 27;121(29):5561-5568. doi: 10.1021/acs.jpca.7b05300. Epub 2017 Jul 17.

Abstract

Quantum calculations are used to examine the properties of heterodimers formed by a series of tetrel-containing molecules with NH as universal Lewis base. TH was taken as a starting point, with T = C, Si, Ge, and Sn. The H atoms were replaced by various numbers of F atoms-THF, TFH, and TF-so as to monitor the effects of adding electron-withdrawing substituents. Unsubstituted TH molecules form the weakest tetrel bonds, only up to about 2 kcal/mol. The bond is strengthened when the H opposite NH is replaced by F, rising up to the 6-9 kcal/mol range. Another means of strengthening arises when the three peripheral H atoms of TH are replaced by F. The effect of the latter is heavily dependent on the nature of the T atom and is particularly noticeable for larger tetrels. The two sorts of fluorination patterns are cooperative, in that their combination in TF yields by far the most powerful tetrel bonding agent. The tetrel bond is strengthened as the T atom moves further down the periodic table column. The strongest bond amounts to 25.5 kcal/mol for SnF··NH. A number of features correlate with the binding energy, but only roughly. These properties include the charge transfer, the AIM bond critical point electron density, the molecular electrostatic potential, and the stretch of the T-X covalent bond upon complex formation.

摘要

量子计算用于研究由一系列含四价元素的分子与作为通用路易斯碱的NH形成的异二聚体的性质。以TH为起点,其中T = C、Si、Ge和Sn。H原子被不同数量的F原子取代,形成THF、TFH和TF,以监测添加吸电子取代基的影响。未取代的TH分子形成最弱的四价元素键,仅约2千卡/摩尔。当NH对面的H被F取代时,键增强,升至6 - 9千卡/摩尔范围。当TH的三个外围H原子被F取代时,会出现另一种增强方式。后者的效果很大程度上取决于T原子的性质,对于较大的四价元素尤其明显。这两种氟化模式是协同的,因为它们在TF中的组合产生了迄今为止最强的四价元素键合剂。随着T原子在周期表列中向下移动,四价元素键增强。对于SnF··NH,最强的键达25.5千卡/摩尔。许多特征与结合能相关,但只是大致相关。这些性质包括电荷转移、AIM键临界点电子密度、分子静电势以及络合物形成时T - X共价键的伸展。

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