Jørgensen KA
Center for Metal Catalyzed Reactions Department of Chemistry Aarhus University 8000 Aarhus C (Denmark).
Angew Chem Int Ed Engl. 2000 Oct 16;39(20):3558-3588. doi: 10.1002/1521-3773(20001016)39:20<3558::aid-anie3558>3.0.co;2-i.
Asymmetric catalysis is a challenge for chemists: How can we design catalysts to achieve the goal of forming optically active compounds? This review provides the reader with an overview of the development of catalytic asymmetric hetero-Diels-Alder reactions of carbonyl compounds and imines. Since its discovery, the Diels-Alder reaction has undergone intensive development and is of fundamental importance for synthetic, physical, and theoretical chemists. The Diels-Alder reaction has been through different stages of development, and at the beginning of the 21st century catalytic Diels-Alder reactions are one of the main areas of focus. The preparation of numerous compounds of importance for our society is based on cycloaddition reactions to carbonyl compounds and imines. There are several parallels between the reactions of carbonyl compounds and those of imines, which, however, begin to vanish on entering the field of catalytic reactions. Why? From a mechanistic point of view some similarities can be drawn, but the synthetic development of catalytic enantioselective hetero-Diels-Alder reactions of imines are several years behind those of the carbonyl compounds. For hetero-Diels-Alder reactions of carbonyl compounds there a number of different chiral catalysts, and great progress has been achieved in developing enantioselective reactions for unactivated and activated carbonyl compounds. In contrast the development of catalytic enantioselective hetero-Diels-Alder reactions of imines is in its infancy and only few catalytic reactions have been published. This review will focus on the most important developments, and discuss the synthetic and mechanistic aspects of enantioselective hetero-Diels-Alder reactions of carbonyl compounds catalyzed by chiral Lewis acids. For the hetero-Diels-Alder reactions of imines, the diastereoselective reactions of optically substrates catalyzed by Lewis acids will be presented first, followed by the catalytic enantioselective reactions.
我们如何设计催化剂以实现形成光学活性化合物的目标?本文综述为读者提供了羰基化合物与亚胺的催化不对称杂Diels-Alder反应的发展概况。自发现以来,Diels-Alder反应经历了深入发展,对合成化学、物理化学和理论化学领域具有至关重要的意义。Diels-Alder反应历经了不同的发展阶段,在21世纪初,催化Diels-Alder反应是主要的研究热点领域之一。众多对我们社会具有重要意义的化合物的制备都基于与羰基化合物和亚胺的环加成反应。羰基化合物的反应与亚胺的反应存在一些相似之处,然而,在进入催化反应领域后这些相似之处开始消失。为什么呢?从机理角度可以得出一些相似性,但亚胺的催化对映选择性杂Diels-Alder反应的合成发展比羰基化合物的反应落后数年。对于羰基化合物的杂Diels-Alder反应,有许多不同的手性催化剂,并且在开发未活化和活化羰基化合物的对映选择性反应方面取得了巨大进展。相比之下,亚胺的催化对映选择性杂Diels-Alder反应的发展尚处于起步阶段,仅有少数催化反应被报道。本文综述将聚焦于最重要的进展,并讨论手性路易斯酸催化的羰基化合物对映选择性杂Diels-Alder反应的合成和机理方面。对于亚胺的杂Diels-Alder反应,将首先介绍路易斯酸催化的光学活性底物的非对映选择性反应,随后介绍催化对映选择性反应。