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钯和铜催化的碳氢键芳基化反应。

Palladium- and copper-catalyzed arylation of carbon-hydrogen bonds.

作者信息

Daugulis Olafs, Do Hien-Quang, Shabashov Dmitry

机构信息

Department of Chemistry, University of Houston, Houston, Texas 77204-5003, USA.

出版信息

Acc Chem Res. 2009 Aug 18;42(8):1074-86. doi: 10.1021/ar9000058.

Abstract

The transition-metal-catalyzed functionalization of C-H bonds is a powerful method for generating carbon-carbon bonds. Although significant advances to this field have been reported during the past decade, many challenges remain. First, most of the methods are substrate-specific and thus cannot be generalized. Second, conversions of unactivated (i.e., not benzylic or alpha to heteroatom) sp(3) C-H bonds to C-C bonds are rare, with most examples limited to t-butyl groups, a conversion that is inherently simple because there are no beta-hydrogens that can be eliminated. Finally, the palladium, rhodium, and ruthenium catalysts routinely used for the conversion of C-H bonds to C-C bonds are expensive. Catalytically active metals that are cheaper and less exotic (e.g., copper, iron, and manganese) are rarely used. This Account describes our attempts to provide solutions to these three problems. We have developed a general method for directing-group-containing arene arylation by aryl iodides. Using palladium acetate as the catalyst, we arylated anilides, benzamides, benzoic acids, benzylamines, and 2-substituted pyridine derivatives under nearly identical conditions. We have also developed a method for the palladium-catalyzed auxiliary-assisted arylation of unactivated sp(3) C-H bonds. This procedure allows for the beta-arylation of carboxylic acid derivatives and the gamma-arylation of amine derivatives. Furthermore, copper catalysis can be used to mediate the arylation of acidic arene C-H bonds (i.e., those with pK(a) values <35 in DMSO). Using a copper iodide catalyst in combination with a base and a phenanthroline ligand, we successfully arylated electron-rich and electron-deficient heterocycles and electron-poor arenes possessing at least two electron-withdrawing groups. The reaction exhibits unusual regioselectivity: arylation occurs at the most hindered position. This copper-catalyzed method supplements the well-known C-H activation/borylation methodology, in which functionalization usually occurs at the least hindered position. We also describe preliminary investigations to determine the mechanisms of these transformations. We anticipate that other transition metals, including iron, nickel, cobalt, and silver, will also be able to facilitate deprotonation/arylation reaction sequences.

摘要

过渡金属催化的C-H键官能化是生成碳-碳键的一种强大方法。尽管在过去十年中该领域已取得显著进展,但仍存在许多挑战。首先,大多数方法具有底物特异性,因此无法推广。其次,未活化的(即非苄基或与杂原子相邻的α位)sp(3) C-H键向C-C键的转化很少见,大多数例子仅限于叔丁基,这种转化本质上很简单,因为没有可消除的β-氢。最后,常用于将C-H键转化为C-C键的钯、铑和钌催化剂价格昂贵。更便宜且不那么稀有的催化活性金属(如铜、铁和锰)很少被使用。本综述描述了我们为解决这三个问题所做的尝试。我们开发了一种通过芳基碘化物对含导向基团的芳烃进行芳基化的通用方法。使用醋酸钯作为催化剂,我们在几乎相同的条件下对酰苯胺、苯甲酰胺、苯甲酸、苄胺和2-取代吡啶衍生物进行了芳基化。我们还开发了一种用于钯催化的未活化sp(3) C-H键的辅助辅助芳基化方法。该方法允许羧酸衍生物的β-芳基化和胺衍生物的γ-芳基化。此外,铜催化可用于介导酸性芳烃C-H键(即在DMSO中pK(a)值<35的那些)的芳基化反应。使用碘化铜催化剂与碱和菲咯啉配体相结合,我们成功地对富电子和缺电子的杂环以及具有至少两个吸电子基团的缺电子芳烃进行了芳基化。该反应表现出不同寻常的区域选择性:芳基化发生在位阻最大的位置。这种铜催化方法补充了众所周知的C-H活化/硼化方法,在该方法中官能化通常发生在位阻最小的位置。我们还描述了确定这些转化机理的初步研究。我们预计其他过渡金属,包括铁、镍、钴和银,也将能够促进去质子化/芳基化反应序列。

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