...
首页> 外文期刊>Angewandte Chemie >Asymmetric Inverse-Electron-Demand Hetero-Diels-Alder Reaction of Six-membered Cyclic Ketones: An Enamine/Metal Lewis Acid Bifunctional Approach
【24h】

Asymmetric Inverse-Electron-Demand Hetero-Diels-Alder Reaction of Six-membered Cyclic Ketones: An Enamine/Metal Lewis Acid Bifunctional Approach

机译:六元环酮的不对称反电子需求杂Diels-Alder反应:一种烯胺/金属路易斯酸双功能方法

获取原文
获取原文并翻译 | 示例
           

摘要

The combination of organocatalysis with metal catalysis has emerged as a potentially powerful tool in organic synthesis. This new concept aims to achieve organic transformations that cannot be accessed by organocatalysis or metal catalysis alone. In our effort to combine organo-enamine catalysis with metal Lewis acid catalysis, we have developed a new class of bifunctional enamine/metal Lewis acid catalysts. These bifunctional catalysts displayed unusually high activity and high stereoselectivity in asymmetric direct aldol reactions. The challenge in the development of Lewis acid/Lewis base catalytic systems lies in the acid-base quenching reaction that leads to catalyst inactivation. A common and elegant approach to solving this problem is the use of a soft acid along with a hard base, or vice versa. Based on this approach, organo-enamine catalysis has been successfully combined with Cu~I, Ag~I, Pd~0, and Au~I. We use a different strategy to solve the acid-base problem. This new strategy complements the mixed soft/hard approach. In our system, the Lewis base (primary or secondary amine) is tethered to a chelating ligand, which serves as a "trap" for the incoming metal. In this way, the base and the metal Lewis acid are brought into close proximity in one molecule without interacting with each other. The bifunctional enamine/metal Lewis acid catalysts have two unique advantages. First, a large number of metals can be introduced. The Lewis acidity can be easily tuned by simply using a different metal, thereby offering great flexibility to this system. For example, stronger Lewis acids, such as La~(III), can be used to activate the enamine acceptor more strongly. Second, the bifunctional catalysts can potentially convert an intermolecular reaction into a much more efficient intramolecular reaction. In addition, the intramolecular bifunctional nature of the catalysts would also enhance the stereoselectivity of the reaction. With these catalysts, we intend to develop new carbon-carbon or carbon-heteroatom bond-forming reactions involving difficult organic transformations. Herein, we report the first example of a highly chemo- and enantioselective inverse-electron-demand hetero-Diels-Alder (HDA) reaction of cyclic ketones with β,γ-unsaturated-α-ketoesters catalyzed by primary-amine-based enamine/metal Lewis acid bifunctional catalysts.
机译:有机催化与金属催化的结合已经成为有机合成中潜在的强大工具。这一新概念旨在实现有机转化或仅靠有机催化无法实现的有机转化。在将有机烯胺催化与金属路易斯酸催化结合的努力中,我们开发了新型的双功能烯胺/金属路易斯酸催化剂。这些双功能催化剂在不对称直接羟醛反应中显示出异常高的活性和高的立体选择性。在路易斯酸/路易斯碱催化体系的开发中的挑战在于导致催化剂失活的酸碱猝灭反应。解决此问题的常用方法是使用软酸和硬碱,反之亦然。基于这种方法,有机烯胺催化已成功地与Cu〜I,Ag〜I,Pd〜0和Au〜I结合。我们使用不同的策略来解决酸碱问题。此新策略补充了混合的软/硬方法。在我们的系统中,路易斯碱(伯胺或仲胺)被束缚到螯合配体上,该螯合配体充当引入金属的“陷阱”。以此方式,使碱和金属路易斯酸在一个分子中紧密接近而不彼此相互作用。双官能烯胺/金属路易斯酸催化剂具有两个独特的优点。首先,可以引入大量金属。路易斯酸度可以很容易地通过简单地使用不同的金属来调节,从而为该系统提供了极大的灵活性。例如,更强的路易斯酸,例如La〜(III),可用于更强烈地活化烯胺受体。其次,双功能催化剂可以将分子间反应转化为更有效的分子内反应。另外,催化剂的分子内双官能性质也将增强反应的立体选择性。使用这些催化剂,我们打算开发涉及困难的有机转化的新的碳-碳或碳-杂原子键形成反应。本文中,我们报道了伯胺基烯胺/催化的β-γ-不饱和α-酮酸酯与环酮的高化学选择性和对映选择性逆电子需求异狄尔斯-阿尔德(HDA)反应的第一个例子金属路易斯酸双功能催化剂。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号