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A DFT Mechanistic Study on the Aza-Aldol Reaction of Boron Aza-Enolates: Relative Stability of Six-Membered Transition State and Its Relevance to the Coordination Mode of the Leaving Group.

作者信息

Miyakawa Sho, Miyazaki Ray, Miura Tomoya, Hasegawa Jun-Ya

机构信息

Institute for Catalysis, Hokkaido University, N21W10, Kita-ku, Sapporo 001-0021, Japan.

Department of Synthetic Chemistry and Biological Chemistry, Kyoto University, Katsura, Kyoto 615-8510, Japan.

出版信息

J Org Chem. 2024 Oct 4;89(19):13913-13922. doi: 10.1021/acs.joc.4c00957. Epub 2024 Sep 18.

DOI:10.1021/acs.joc.4c00957
PMID:39292972
Abstract

The mechanism of the aza-aldol reaction between boron aza-enolate and benzaldehyde is investigated by using density functional theory calculations. The result shows that the - isomer is preferentially formed, consistent with experimental observations. The six-membered ring transition state (TS) with the boat form leads to the isomer, while the more unstable chair TS does to the isomer. The preference of the isomer is determined by the interactions between the substituents of aza-enolate and benzaldehyde. Structural distortion and intrinsic reaction coordinate analyses of simplified model systems provide insights into the origin of the relative stability of the rate-determining TS with boat and chair forms. The boat TS is an early TS; thus, minimal structural distortions of the reactant are required to reach this TS. The Lewis pair interactions between the boron and imine groups during B-N elimination also influenced the relative stability of the TSs. This interaction involves the nitrogen lone pair in the boat TS, while the π(N═C) orbital is involved in the chair TS. The Lewis pair with the lone pair stabilizes the TS more than that with the π orbital. The boron aza-enolate with 9-BBN generates an ate complex and forms C-C bonds sequentially, whereas that with Bpin does not generate an ate complex and exhibits the concerted formation of B-O and C-C bonds. Thus, the higher electrophilicity of boron such as 9-BBN enhances the reactivity by facilitating the formation of the ate complex. A reaction design is proposed to reverse the / selectivity. Proof-of-concept DFT calculations suggested that the modification of the imine group would change the relative stability of the boat/chair TSs and give the -product.

摘要

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