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手性伯胺“1 + ”协同催化的对映选择性转化

Enantioselective Transformations by "1 + " Synergistic Catalysis with Chiral Primary Amines.

作者信息

Cai Mao, Zhang Long, Zhang Wenzhao, Lin Qifeng, Luo Sanzhong

机构信息

Center of Basic Molecular Science, Department of Chemistry, Tsinghua University, Beijing 100084, China.

出版信息

Acc Chem Res. 2024 May 21;57(10):1523-1537. doi: 10.1021/acs.accounts.4c00128. Epub 2024 May 3.

Abstract

ConspectusSynergistic catalysis is a powerful tool that involves two or more distinctive catalytic systems to activate reaction partners simultaneously, thereby expanding the reactivity space of individual catalysis. As an established catalytic strategy, organocatalysis has found numerous applications in enantioselective transformations under rather mild conditions. Recently, the introduction of other catalytic systems has significantly expanded the reaction space of typical organocatalysis. In this regard, aminocatalysis is a prototypical example of synergistic catalysis. The combination of aminocatalyst and transition metal could be traced back to the early days of organocatalysis and has now been well explored as an enabling catalytic strategy. Particularly, the acid-base properties of aminocatalysis can be significantly expanded to include usually electrophiles generated via metal-catalyzed cycles. Later on, aminocatalyst has also been exploited in synergistically combining with photochemical and electrochemical processes to facilitate redox transformations. However, synergistically combining one type of aminocatalyst with many different catalytic systems remains a great challenge. One of the most daunting challenges is the compatibility of aminocatalysts in coexistence with other catalytic species. As nucleophilic species, aminocatalysts may also bind with metal, which leads to mutual inhibition or even quenching of the individual catalytic activity. In addition, oxidative stability of aminocatalyst is also a non-neglectable issue, which causes difficulties in exploring oxidative enamine transformations.In 2007, we developed a vicinal diamine type of chiral primary aminocatalysts. This class of primary aminocatalysts was developed and evolved as functional and mechanistic mimics to the natural aldolase and has been widely applied in a number of enamine/iminium ion-based transformations. By following a "1 + " synergistic strategy, the chiral primary amine catalysts were found to work synergistically or cooperatively with a number of transition metal catalysts, such as Pd, Rh, Ag, Co, and Cu, or other organocatalysts, such as B(CF), ketone, selenium, and iodide. Photocatalysis and electrochemical processes can also be incorporated to work together with the chiral primary amine catalysts. The 1 + catalytic strategy enabled us to execute unexploited transformations by fine-tuning the acid-base and redox properties of the enamine intermediates and to achieve effective reaction and stereocontrol beyond the reach individually. During these efforts, an unprecedented excited-state chemistry of enamine was uncovered to make possible an effective deracemization process. In this Account, we describe our recent efforts since 2015 in exploring synergistic chiral primary amine catalysis, and the content is categorized according to the type of synergistic partner such that in each section the developed synergistic catalysis, reaction scopes, and mechanistic features are presented and discussed.

摘要

综述

协同催化是一种强大的工具,它涉及两个或更多独特的催化体系,能同时活化反应底物,从而拓展了单个催化反应的活性空间。作为一种成熟的催化策略,有机催化已在相当温和的条件下的对映选择性转化中得到了广泛应用。近年来,引入其他催化体系显著拓展了典型有机催化的反应空间。在这方面,氨基催化是协同催化的一个典型例子。氨基催化剂与过渡金属的组合可以追溯到有机催化的早期,如今已作为一种可行的催化策略得到了充分探索。特别是,氨基催化的酸碱性质可以显著扩展,以包括通常通过金属催化循环生成的亲电试剂。后来,氨基催化剂还被用于与光化学和电化学过程协同结合,以促进氧化还原转化。然而,将一种类型的氨基催化剂与许多不同的催化体系协同结合仍然是一个巨大的挑战。最艰巨的挑战之一是氨基催化剂与其他催化物种共存时的兼容性。作为亲核物种,氨基催化剂也可能与金属结合,这会导致相互抑制甚至使各自的催化活性淬灭。此外,氨基催化剂的氧化稳定性也是一个不可忽视的问题,这给探索氧化烯胺转化带来了困难。

2007年,我们开发了一种邻二胺型手性伯胺催化剂。这类伯胺催化剂是作为天然醛缩酶的功能和机理模拟物而开发和发展起来的,并已广泛应用于许多基于烯胺/亚胺离子的转化反应中。通过遵循“1 + ”协同策略,发现手性伯胺催化剂能与多种过渡金属催化剂(如钯、铑、银、钴和铜)或其他有机催化剂(如三(五氟苯基)硼、酮、硒和碘化物)协同或合作发挥作用。光催化和电化学过程也可以与手性伯胺催化剂一起协同工作。“1 + ”催化策略使我们能够通过微调烯胺中间体的酸碱和氧化还原性质来实现未开发的转化反应,并实现单独无法达到的有效反应和立体控制。在这些研究过程中,发现了一种前所未有的烯胺激发态化学,使得有效的消旋化过程成为可能。在本综述中,我们描述了自2015年以来我们在探索协同手性伯胺催化方面的最新研究成果,并根据协同伙伴的类型对内容进行了分类,以便在每个部分中介绍和讨论所开发的协同催化、反应范围和机理特征。

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