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通过苄基和间位C-H键活化实现钯催化[3+2]环化反应的理论研究

Theoretical Investigations of Palladium-Catalyzed [3+2] Annulation via Benzylic and meta C-H Bond Activation.

作者信息

Yoshimoto Rie, Taborosi Attila, He Qiyuan, Ano Yusuke, Chatani Naoto, Mori Seiji

机构信息

Institute of Quantum Beam Science, Graduate School of Science and Engineering, Ibaraki University, 2-1-1 Bunkyo, Mito, Ibaraki, 310-8512, Japan.

Research Initiative for Supra-Materials, Shinshu University, Nagano, Nagano, 380-8553, Japan.

出版信息

Chem Asian J. 2023 Sep 15;18(18):e202300531. doi: 10.1002/asia.202300531. Epub 2023 Aug 10.

Abstract

The palladium-catalyzed reaction of aromatic amides with maleimides results in the formation of a double C-H bond activation product, which occurs at both the benzylic and meta positions. Computational chemistry studies suggest that the first C-H bond activation unfolds via a six-membered palladacycle, maleimide insertion, protonation of the Pd-N bond, and then activation of the meta C-H bond. The process concludes with reductive elimination, producing an annulation product. The energy decomposition analysis (EDA) showed that the deformation energy favors the ortho C-H bond activation process. However, this route is non-productive. The interaction energy controls the site where the maleimide is inserted into the Pd-C(sp ) bond, which determines its site selectivity. The energetic span model indicates that the meta C-H bond activation step is the one that determines the turnover frequency. Regarding the directing group, it has been concluded that the strong Pd-S bonding and the destabilizing effect of the deformation energy allow the 2-thiomethylphenyl to function effectively as a directing group.

摘要

钯催化的芳族酰胺与马来酰亚胺的反应导致形成双C-H键活化产物,该产物在苄基和间位均会生成。计算化学研究表明,第一个C-H键活化通过六元钯环、马来酰亚胺插入、Pd-N键的质子化,然后是间位C-H键的活化来展开。该过程以还原消除结束,生成环化产物。能量分解分析(EDA)表明,变形能有利于邻位C-H键活化过程。然而,这条路线没有生成产物。相互作用能控制着马来酰亚胺插入Pd-C(sp)键的位置,这决定了其位点选择性。能量跨度模型表明,间位C-H键活化步骤是决定周转频率的步骤。关于导向基团,已得出结论,强Pd-S键和变形能的去稳定作用使2-硫代甲基苯基能够有效地作为导向基团发挥作用。

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