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New strategies for ruthenium catalyzed C-C bond formation.

机译:钌催化C-C键形成的新策略。

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摘要

Transition metal-catalyzed C-H bond activation allows direct functionalization of the ubiquitous C-H bonds in organic molecules to increase the molecular complexity. Since Murai's pioneering work in ruthenium catalyzed regioselective arene-alkene coupling reaction, a number of transition metal catalysts have been developed for C-C bond formation via C-H bond activation. However, metal-catalyzed C-H functionalization faces a number of long-standing challenges such as the control over regio- and stereoselectivity and harsh reaction conditions. Presented herein is our research on the development of ruthenium(II)-based catalysts for new and improved methods in C-C bond formations by formal activation of sp2 C-H bonds and subsequent coupling with alkyne substrates.;Chapter 1 introduces the background of alkyne hydroarylation initiated by transition metal-catalyzed C-H bond activation and the significance to develop new strategies to overcome the limitations of current methods.;In Chapter 2 and Chapter 3, ruthenium(II)-N-heterocyclic carbene (NHC) catalyst systems were developed for efficient [3+2] carbocyclization between N-H aromatic ketimines or aromatic ketones and internal alkynes under very mild conditions. This process incorporates the ortho-directing imine and ketone groups for C-H bond activation into the overall transformation in a tandem manner and enables efficient access to indenyl amines and alcohols in high yields.;Chapter 4 describes the development of bis-cyclometalated ruthenium(II) complexes with readily available N-H aromatic ketimine and ketone ligands as a new class of catalyst precursors for C-C coupling reactions. The catalytic activity of the bis(imine) complex is evaluated in several catalytic coupling reactions of alkene and alkyne substrates. The coupling reactions are proposed to proceed by Ru(II)/Ru(IV) catalytic cycles involving C-C bond formation by oxidative cyclization.;Chapter 5 details the development of a decarboxylative alkyne hydroarylation process to synthesize arylalkenes with controlled and versatile regiochemistry of aromatic substituents. Following a tandem sequence of C-H bond activation and alkyne coupling, the subsequent decarboxylation is facilitated by the newly installed ortho-alkenyl moiety and is compatible with various aromatic substituents at para-, meta- and ortho-positions. This new decarboxylation strategy eliminates the prerequisite of substrate activation by ortho-substitution and allows a broad scope of substituted benzoic acids to serve as aromatic building blocks for alkyne hydroarylation.
机译:过渡金属催化的C-H键活化可以使有机分子中普遍存在的C-H键直接官能化,从而增加分子的复杂性。自Murai在钌催化的区域选择性芳烃-烯烃偶联反应方面的开创性工作以来,已开发出许多过渡金属催化剂,用于通过C-H键活化形成C-C键。但是,金属催化的C-H官能化面临许多长期挑战,例如对区域和立体选择性的控制以及苛刻的反应条件。本文介绍的是我们通过基于sp2 CH键的正式活化以及随后与炔烃底物的偶联作用开发基于钌(II)的催化剂以开发CC键形成新方法和改进方法的研究;第1章介绍了由炔烃引发的炔烃加氢化的背景过渡金属催化的CH键活化和开发克服现有方法局限性的新策略的意义。在第二章和第三章中,开发了钌(II)-N-杂环卡宾(NHC)催化剂体系以提高效率[3 +2]在非常温和的条件下,NH芳族酮亚胺或芳族酮与内部炔烃之间的碳环化作用。该方法将用于CH键活化的邻位亚胺和酮基串联在一起,并使其整体转化,并使高效率地高效获得茚基胺和醇。第4章描述了双环金属化钌(II)的开发与现成的NH芳族酮亚胺和酮配体形成的络合物作为CC偶联反应的新型催化剂前体。在烯烃和炔烃底物的几次催化偶联反应中评估了双(亚胺)配合物的催化活性。提出通过Ru(II)/ Ru(IV)催化循环进行偶联反应,该催化循环包括通过氧化环化形成CC键。 。按照串联的C-H键激活和炔烃偶联顺序,新安装的邻链烯基部分可促进后续的脱羧作用,并与对位,间位和邻位的各种芳族取代基兼容。这种新的脱羧策略消除了通过邻位取代激活底物的先决条件,并允许广泛范围的取代苯甲酸用作炔烃加氢芳基化的芳族基石。

著录项

  • 作者

    Zhang, Jing.;

  • 作者单位

    North Dakota State University.;

  • 授予单位 North Dakota State University.;
  • 学科 Chemistry Organic.
  • 学位 Ph.D.
  • 年度 2014
  • 页码 187 p.
  • 总页数 187
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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