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机械化学环氧乙烷开环反应中的力辅助轨道交叉

Force-Assisted Orbital Crossing in Mechanochemical Oxirane Ring Opening.

作者信息

Germann Anne, Meisner Jan

机构信息

Institute of Physical Chemistry, Heinrich Heine University Düsseldorf, 40225 Düsseldorf, Germany.

出版信息

J Phys Chem A. 2024 Nov 28;128(47):10224-10233. doi: 10.1021/acs.jpca.4c06204. Epub 2024 Nov 15.

Abstract

Polymer mechanochemistry induces chemical reactivity by applying a directed force, which can lead to unexpected reaction mechanisms. Strained cyclic molecules are often used in force-sensitive motifs because of the strong force coupling of ring-opening reactions. In this computational study, the force dependence of the ring-opening reactions of oxirane will be investigated. Density functional theory and multireference methods were used to investigate the electronic character of both symmetry-allowed and symmetry-forbidden reactions. In the latter case, an orbital crossing occurs during the reaction course, forcing the Woodward-Hoffmann-forbidden reaction to proceed via a diradical pathway. The performance of broken-symmetry density functional theory is evaluated and compares well to high-accuracy CASPT2, MRCI, and ic-MRCC computations. Due to the high ring strain, the barrier heights of both ring-opening reactions are steeply reduced by the application of an external force. Furthermore, the use of unsaturated linkers was shown to yield a significant reduction of the barrier heights, explaining previous experimental findings. Finally, we show through analysis of the PES topology how the external force transforms characteristic points such as saddle points and bifurcations, providing insights into force-dependent mechanism changes.

摘要

聚合物机械化学通过施加定向力来诱导化学反应活性,这可能导致意想不到的反应机制。由于开环反应的强力耦合作用,应变环状分子常用于力敏基序中。在这项计算研究中,将研究环氧乙烷开环反应的力依赖性。采用密度泛函理论和多参考方法研究对称允许和对称禁阻反应的电子特性。在后一种情况下,反应过程中会发生轨道交叉,迫使伍德沃德-霍夫曼禁阻反应通过双自由基途径进行。评估了破缺对称密度泛函理论的性能,并与高精度的CASPT2、MRCI和ic-MRCC计算结果进行了比较。由于高环张力,施加外力会使两个开环反应的势垒高度急剧降低。此外,研究表明使用不饱和连接基会使势垒高度显著降低,这解释了先前的实验结果。最后,我们通过对势能面拓扑结构的分析表明,外力如何改变鞍点和分支点等特征点,从而深入了解力依赖的机制变化。

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