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通过AgF辅助的膦催化实现从权氏[4+2]环加成到[3+2]环加成的转变。

Transition from Kwon [4+2]- to [3+2]-cycloaddition enabled by AgF-assisted phosphine catalysis.

作者信息

Qian Jinlong, Zhou Lijin, Wang Yuyi, Zhou Xiaoyu, Tong Xiaofeng

机构信息

School of Pharmaceutical and Chemical Engineering & Institute for Advanced Studies, Taizhou University, Taizhou, Zhejiang, 318000, China.

出版信息

Nat Commun. 2024 Aug 14;15(1):6995. doi: 10.1038/s41467-024-51295-9.

Abstract

Phosphine catalysis generally relies on the potential of carbanion-phosphonium zwitterions that are generated via nucleophilic addition of phosphine catalyst to electrophilic reactants. Consequently, structural modification of zwitterions using distinct electrophilic reactants has emerged as a prominent strategy to enhance catalysis diversity. Herein, we present an alternative strategy that utilizes AgF additive to expand phosphine catalysis. We find that AgF can readily transform the canonical carbanion-phosphonium zwitterion into silver enolate-fluorophosphorane intermediate, eventually furnishing a P(III)/P(V) catalytic cycle. This strategy has been successfully applied to the phosphine-catalyzed reaction of 2-substituted allenoate and imine, resulting in the transition from Kwon [4 + 2] cycloaddition to [3 + 2] cycloaddition. This [3 + 2] cycloaddition features remarkable diastereoselectivity, high yield, and broad substrate scope. Experimental and computational studies have validated the proposed mechanism. Given the prevalence of carbanion-phosphonium zwitterions in phosphine catalysis, this AgF-assisted strategy is believed to hold significant potential for advancing P(III)/P(V) catalysis.

摘要

膦催化通常依赖于通过膦催化剂对亲电反应物的亲核加成而产生的碳负离子 - 鏻两性离子的潜力。因此,使用不同亲电反应物对两性离子进行结构修饰已成为增强催化多样性的突出策略。在此,我们提出了一种利用AgF添加剂来扩展膦催化的替代策略。我们发现AgF能够轻易地将典型的碳负离子 - 鏻两性离子转化为烯醇银 - 氟代磷烷中间体,最终形成一个P(III)/P(V)催化循环。该策略已成功应用于2 - 取代的丙二烯酸酯与亚胺的膦催化反应,实现了从权氏[4 + 2]环加成到[3 + 2]环加成的转变。这种[3 + 2]环加成具有显著的非对映选择性、高产率和广泛的底物范围。实验和计算研究验证了所提出的机理。鉴于碳负离子 - 鏻两性离子在膦催化中的普遍性,这种AgF辅助策略被认为在推进P(III)/P(V)催化方面具有巨大潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/84ca/11324788/209b2cc09477/41467_2024_51295_Fig1_HTML.jpg

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