Beijing National Laboratory of Molecular Sciences (BNLMS) and Key Laboratory of Bioorganic Chemistry and Molecular Engineering of Ministry of Education, College of Chemistry, Peking University, Beijing 100871, China.
Acc Chem Res. 2013 Feb 19;46(2):236-47. doi: 10.1021/ar300101k. Epub 2012 Sep 26.
Transition-metal-catalyzed carbene transformations and cross-couplings represent two major reaction types in organometallic chemistry and organic synthesis. However, for a long period of time, these two important areas have evolved separately, with essentially no overlap or integration. Thus, an intriguing question has emerged: can cross-coupling and metal carbene transformations be merged into a single reaction cycle? Such a combination could facilitate the development of novel carbon-carbon bond-forming methodologies. Although this concept was first explored about 10 years ago, rapid developments inthis area have been achieved recently. Palladium catalysts can be used to couple diazo compounds with a wide variety of organic halides. Under oxidative coupling conditions, diazo compounds can also react with arylboronic acids and terminal alkynes. Both of these coupling reactions form carbon-carbon double bonds. As the key step in these catalytic processes, Pd carbene migratory insertion plays a vital role in merging the elementary steps of Pd intermediates, leading to novel carbon-carbon bond formations. Because the diazo substrates can be generated in situ from N-tosylhydrazones in the presence of base, the N-tosylhydrazones can be used as reaction partners, making this type of cross-coupling reaction practical in organic synthesis. N-Tosylhydrazones are easily derived from the corresponding aldehydes or ketones. The Pd-catalyzed cross-coupling of N-tosylhydrazones is considered a complementary reaction to the classic Shapiro reaction for converting carbonyl functionalities into carbon-carbon double bonds. It can also serve as an alternative approach for the Pd-catalyzed cross-coupling of carbonyl compounds, which is usually achieved via triflates. The combination of carbene formation and cross-coupling in a single catalytic cycle is not limited to Pd-catalyzed reactions. Recent studies of Cu-, Rh-, Ni-, and Co-catalyzed cross-coupling reactions with diazo compounds or N-tosylhydrazones show that these transformations also work with other transition metals, demonstrating the generality of the diazo compounds as new cross-coupling partners in transition-metal-catalyzed coupling reactions.
过渡金属催化卡宾转化和交叉偶联代表了有机金属化学和有机合成中的两种主要反应类型。然而,在很长一段时间内,这两个重要领域一直各自独立发展,几乎没有重叠或融合。因此,出现了一个有趣的问题:交叉偶联和金属卡宾转化能否合并成一个单一的反应循环?这种组合可以促进新型碳-碳键形成方法的发展。尽管这个概念在大约 10 年前就已经被探索过,但最近这个领域的发展非常迅速。钯催化剂可以用于将重氮化合物与各种有机卤化物偶联。在氧化偶联条件下,重氮化合物也可以与芳基硼酸和末端炔烃反应。这两种偶联反应都形成碳-碳双键。作为这些催化过程的关键步骤,Pd 卡宾迁移插入在合并 Pd 中间体的基本步骤中起着至关重要的作用,导致新型碳-碳键的形成。由于重氮底物可以在碱的存在下从 N-对甲苯磺酰腙原位生成,因此 N-对甲苯磺酰腙可以作为反应伙伴,使这种类型的交叉偶联反应在有机合成中具有实际意义。N-对甲苯磺酰腙很容易从相应的醛或酮衍生而来。Pd 催化的 N-对甲苯磺酰腙的交叉偶联被认为是经典 Shapiro 反应的互补反应,用于将羰基官能团转化为碳-碳双键。它也可以作为 Pd 催化的羰基化合物交叉偶联的替代方法,通常通过三氟甲磺酸酯实现。在单个催化循环中卡宾形成和交叉偶联的组合不仅限于 Pd 催化反应。最近关于 Cu、Rh、Ni 和 Co 催化的重氮化合物或 N-对甲苯磺酰腙的交叉偶联反应的研究表明,这些转化也可以与其他过渡金属一起进行,证明了重氮化合物作为过渡金属催化偶联反应中新型交叉偶联伙伴的通用性。