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狄尔斯-阿尔德反应同步性的新见解:基于反应力分析和能量导数原子分辨率的理论研究

New Insights into the (A)Synchronicity of Diels-Alder Reactions: A Theoretical Study Based on the Reaction Force Analysis and Atomic Resolution of Energy Derivatives.

作者信息

Isamura Bienfait Kabuyaya, Lobb Kevin Alan

机构信息

Department of Chemistry, Rhodes University, Makhanda 6140, South Africa.

Research Unit in BioInformatics (RUBi), Rhodes University, Makhanda 6140, South Africa.

出版信息

Molecules. 2022 Feb 25;27(5):1546. doi: 10.3390/molecules27051546.

Abstract

In the present manuscript, we report new insights into the concept of (a)synchronicity in Diels-Alder (DA) reactions in the framework of the reaction force analysis in conjunction with natural population calculations and the atomic resolution of energy derivatives along the intrinsic reaction coordinate (IRC) path. Our findings suggest that the DA reaction transitions from a preferentially concerted mechanism to a stepwise one in a 0.10 Å window of synchronicity indices ranging from 0.90 to 1.00 Å. We have also shown that the relative position of the global minimum of the reaction force constant with respect to the TS is an alternative and quantifiable indicator of the (a)synchronicity in DA reactions. Moreover, the atomic resolution of energy derivatives reveals that the mechanism of the DA reaction involves two inner elementary processes associated with the formation of each of the two C-C bonds. This resolution goes on to indicate that, in asynchronous reactions, the driving and retarding components of the reaction force are mostly due to the fast and slow-forming C-C bonds (elementary processes) respectively, while in synchronous reactions, both elementary processes retard and drive the process concomitantly and equivalently.

摘要

在本论文中,我们结合自然布居数计算以及沿内禀反应坐标(IRC)路径的能量导数的原子分辨率,在反应力分析框架下报告了对狄尔斯-阿尔德(DA)反应中(非)同步性概念的新见解。我们的研究结果表明,在同步性指数从0.90到1.00 Å的0.10 Å窗口内,DA反应从优先协同机制转变为逐步机制。我们还表明,反应力常数全局最小值相对于过渡态(TS)的相对位置是DA反应中(非)同步性的另一种可量化指标。此外,能量导数的原子分辨率表明,DA反应的机制涉及与两个C-C键形成相关的两个内部基本过程。这种分辨率进而表明,在非同步反应中,反应力的驱动和阻碍成分分别主要归因于快速和缓慢形成的C-C键(基本过程),而在同步反应中,两个基本过程同时且等效地阻碍和驱动反应进程。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9c28/8911883/5a0fbd2962fc/molecules-27-01546-g001.jpg

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