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Cp*Ir 催化的分子间对映选择性烯丙基 C-H 酰胺化的综合理论研究:反应机理、电子过程和区域选择性。

Comprehensive Theoretical Study of Cp*Ir-Catalyzed Intermolecular Enantioselective Allylic C-H Amidation: Reaction Mechanism, Electronic Processes, and Regioselectivity.

机构信息

College of Chemistry and Chemical Engineering, Taishan University, Taian271000, Shandong, People's Republic of China.

College of Chemistry and Material Science, Shandong Agricultural University, Taian271018, Shandong, People's Republic of China.

出版信息

J Org Chem. 2023 Feb 17;88(4):2493-2504. doi: 10.1021/acs.joc.2c02951. Epub 2023 Jan 30.

Abstract

Density functional theory was used to elucidate the reaction mechanism of Cp*Ir-catalyzed intermolecular regioselective C(sp)-H amidation of alkenes with methyl dioxazolones. All substrates, intermediates, and transition states were fully optimized at the ωB97XD/6-31G(d,p) level (LANL2DZ(f) for Ir). The computational results revealed that this amidation occurred through the Ir/Ir catalytic cycle, involving four important elementary steps: C-H bond activation, oxidative addition of methyl dioxazolone, reductive elimination, and proto-demetalation, and the first was the rate-determining step. The C-H bond activation showed good α- and branch-regioselectivity, decided by the distortion energy of 2-pentene and the interaction energy of the transition state, respectively. The oxidative addition of dioxazolone occurred in one elementary step with CO disassociation. The reductive elimination showed good branch-regioselectivity determined by the distorted energy of the allyl group. In the proto-demetalation, hydrogen directly transferred from the oxygen atom to the nitrogen atom. Moreover, to clarify the effect of the substituted groups, selected 12 substrates were also discussed in this text.

摘要

密度泛函理论被用于阐明 Cp*Ir 催化的烯与甲基二恶唑酮的分子间区域选择性 C(sp)-H 酰胺化反应的反应机理。所有底物、中间体和过渡态均在 ωB97XD/6-31G(d,p)水平(Ir 采用 LANL2DZ(f))下进行了全优化。计算结果表明,该酰胺化反应通过 Ir/Ir 催化循环进行,涉及四个重要的基本步骤:C-H 键活化、甲基二恶唑酮的氧化加成、还原消除和原脱金属化,其中第一步是速率决定步骤。C-H 键活化表现出良好的 α-和支化区域选择性,分别由 2-戊烯的畸变能和过渡态的相互作用能决定。二恶唑酮的氧化加成以 CO 解离的形式发生在一个基本步骤中。还原消除表现出良好的支化区域选择性,由烯丙基的畸变能决定。在原脱金属化过程中,氢原子直接从氧原子转移到氮原子。此外,为了阐明取代基的影响,本文还讨论了 12 种选定的底物。

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