使用密度泛函方法量化分子平衡中π-非共价相互作用的强度

IF 6.1 Q1 CHEMISTRY, MULTIDISCIPLINARY Chemistry methods : new approaches to solving problems in chemistry Pub Date : 2022-08-12 DOI:10.1002/cmtd.202200044
Luka Nunar, Dr. Abil E. Aliev
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引用次数: 0

摘要

以前设计了不同的分子平衡来比较非共价相互作用。然而,有些平衡很难合成,需要开发一种计算方法。在这项工作中,我们使用DFT方法探测π系统的非共价相互作用,以评估它们在再现实验测量的构象种群方面的可靠性。根据我们的结果,PW6B95D3功能表现最好,其次是M11L和ωB97XD。此外,羟基旋转的模拟揭示了难以通过实验识别的稳定OH⋯炔和OH⋯腈相互作用。然后应用这些方法来比较尚未在实验中探索的分子中硫π相互作用的强度。与羟基对应物相比,巯基旋转的模拟表明,具有两个硫孤对的构象的几何形状朝向芳香环或双键是稳定的,这表明S(LP)⋯π相互作用在本质上是有吸引力的。硫能够重新排列其电子周围,从而与π系统形成吸引的相互作用,包括那些有电子提供或撤回基团的π系统,也得到了证实。总的来说,研究结果表明,使用选定的DFT技术对非共价相互作用的强度进行定性和定量评估是有希望的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Quantification of the Strength of π-Noncovalent Interactions in Molecular Balances using Density Functional Methods

Different molecular balances were designed previously to compare noncovalent interactions. However, some balances are difficult to synthesise and there is a need for developing a computational approach. In this work, we probe noncovalent interactions of π systems using DFT methods to assess their reliability in reproducing experimentally measured conformer populations. Based on our results, the PW6B95D3 functional performed best, followed by M11L and ωB97XD. Additionally, the simulation of the rotation of the hydroxyl group revealed stabilising OH⋯Alkyne and OH⋯Nitrile interactions that are difficult to identify experimentally. These methods were then applied to compare the strengths of sulfur⋯π interactions in molecules which have not been explored experimentally. Compared to the hydroxyl counterpart, the simulation of the thiol group rotation showed that the geometry of the conformer with the two sulfur lone pairs oriented towards the aromatic ring or the double bond is stabilised, suggesting that S(LP)⋯π interactions can be attractive in nature. The ability of sulfur to rearrange its electronic surrounding to form an attractive interaction with π systems, including those with either electron-donating or withdrawing groups, was also confirmed. Overall, the results show a promising future for both qualitative and quantitative assessments of the strengths of noncovalent interactions using selected DFT techniques.

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