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通过增强有机镍亲电性实现未活化烯烃的配体促进碳酰胺化反应

Ligand-Enabled Carboamidation of Unactivated Alkenes through Enhanced Organonickel Electrophilicity.

作者信息

Hwang Yeongyu, Wisniewski Steven R, Engle Keary M

机构信息

Department of Chemistry, The Scripps Research Institute, La Jolla, California 92037, United States.

Chemical Process Development Bristol Myers Squibb, New Brunswick, New Jersey 08903, United States.

出版信息

J Am Chem Soc. 2023 Nov 22;145(46):25293-25303. doi: 10.1021/jacs.3c08855. Epub 2023 Nov 8.

Abstract

Catalytic carboamination of alkenes is a powerful synthetic tool to access valuable amine scaffolds from abundant and readily available alkenes. Although a number of synthetic approaches have been developed to achieve the rapid buildup of molecular complexity in this realm, the installation of diverse carbon and nitrogen functionalities onto unactivated alkenes remains underdeveloped. Here we present a ligand design approach to enable nickel-catalyzed three-component carboamidation that is applicable to a wide range of alkenyl amine derivatives via a tandem process involving alkyl migratory insertion and inner-sphere metal-nitrenoid transfer. With this method, various nitrogen functionalities can be installed into both internal and terminal unactivated alkenes, leading to differentially substituted diamines that would otherwise be difficult to access. Mechanistic investigations reveal that the tailored Ni(cod)(BQ) precatalyst modulates the electronic properties of the presumed π-alkene-nickel intermediate via the quinone ligand, leading to enhanced carbonickelation efficiency across the unactivated C═C bond. These findings establish nickel's ability to catalyze multicomponent carboamidation with a high efficiency and exquisite selectivity.

摘要

烯烃的催化碳胺化是一种强大的合成工具,可从丰富且易于获得的烯烃中获得有价值的胺骨架。尽管已经开发了许多合成方法来在这一领域实现分子复杂性的快速构建,但在未活化烯烃上安装各种碳和氮官能团的方法仍未得到充分发展。在此,我们提出了一种配体设计方法,以实现镍催化的三组分碳酰胺化反应,该反应通过涉及烷基迁移插入和内球金属氮烯转移的串联过程,适用于广泛的烯基胺衍生物。通过这种方法,可以将各种氮官能团引入内部和末端未活化烯烃中,从而得到否则难以获得的不同取代的二胺。机理研究表明,定制的Ni(cod)(BQ)预催化剂通过醌配体调节假定的π-烯烃-镍中间体的电子性质,从而提高了未活化C═C键的碳镍化效率。这些发现确立了镍高效催化多组分碳酰胺化反应并具有出色选择性的能力。

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