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多键反应中动能和势能变化的见解:反应电子流视角

Insights into the variations of kinetic and potential energies in a multi-bond reaction: the reaction electronic flux perspective.

作者信息

Villegas-Escobar Nery

机构信息

Departamento de Físico-Química, Facultad de Ciencias Químicas, Universidad de Concepción, Concepción, 4070139, Chile.

出版信息

J Mol Model. 2024 Jul 11;30(8):262. doi: 10.1007/s00894-024-06024-w.

Abstract

CONTEXT

The debate over whether kinetic energy (KE) or potential energy (PE) are the fundamental energy components that contribute to forming covalent bonds has been enduring and stimulating over time. However, the supremacy of these energy components in reactions where multiple bonds are simultaneously formed or broken has yet to be explored. In this study, we use the reaction electronic flux (REF), an effective tool for investigating changes in driving electronic activity when bond formation or dissociation occurs in a chemical reaction, to examine the fluctuations in the KE and PE in a multi-bond reaction. To that end, the activation of CO by low-valent group 14 catalysts through a concerted -bond metathesis mechanism is analyzed. The findings of this preliminary study suggest that the REF can be utilized as a tool to rationalize alterations in the KE and PE in a multi-bond reaction. Specifically, analyses across the reaction coordinate reveal that changes in the KE and PE precede activation in the REF, stimulating the electronic activity where bond formation or dissociation processes dominate.

METHODS

The activation of CO by the low-valent LEH catalysts (L = N,N'-bis(2,6-diisopropyl phenyl)- -diketiminate; E = Si, Ge, Sn, and Pb) was studied along the reaction coordinate at the M06-2X/6-31 G(d,p)-LANL2DZ(E) level of theory. The respective minimum energy path calculations were obtained using the intrinsic reaction coordinate (IRC) procedure. The reaction electronic flux (REF) was calculated through the computation of the electronic chemical potential using the frontier molecular orbital approximation. Mayer bond orders along the reaction coordinate have been determined using the NBO 3.1 program in Gaussian16. Most of the reaction coordinate quantities reported in this study (REF, KE, PE, among others) have been determined using the Kudi program and custom Python scripts.

摘要

背景

关于动能(KE)和势能(PE)哪个是形成共价键的基本能量成分的争论一直持续且具有启发性。然而,在同时形成或断裂多个键的反应中,这些能量成分的主导地位尚未得到探索。在本研究中,我们使用反应电子通量(REF),这是一种在化学反应中发生键形成或解离时研究驱动电子活性变化的有效工具,来研究多键反应中KE和PE的波动。为此,分析了低价第14族催化剂通过协同σ键复分解机理对CO的活化作用。这项初步研究的结果表明,REF可作为一种工具,用于合理化多键反应中KE和PE的变化。具体而言,对反应坐标的分析表明,KE和PE的变化在REF中的活化之前就已发生,从而激发了以键形成或解离过程为主导的电子活性。

方法

在M06 - 2X/6 - 31G(d,p)-LANL2DZ(E)理论水平上,沿着反应坐标研究了低价LEH催化剂(L = N,N'-双(2,6 - 二异丙基苯基)-β - 二酮亚胺;E = Si、Ge、Sn和Pb)对CO的活化作用。使用内禀反应坐标(IRC)程序获得各自的最小能量路径计算结果。通过使用前沿分子轨道近似计算电子化学势来计算反应电子通量(REF)。使用高斯16中的NBO 3.1程序确定沿反应坐标的迈耶键级。本研究中报告的大多数反应坐标量(REF、KE、PE等)已使用Kudi程序和自定义Python脚本确定。

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