Development of Catalytic Carbon–Carbon Bond Formations Based on Composite Metal Catalysts

T. Iwasaki
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Abstract

Transition-metal-catalyzed C–C bond(s) formations are one of the most fundamental organic transformations, where the design of transition metal catalysts is the key of success. To activate two coupling partners simultaneously, we focused on the combination of a transition metal anion and a typical metal cation. The anionic transition metal center itself or own ligands are nucleophilically activated by the anionic charge, and the Lewis acidic typical metal cation activates the electrophilic counterpart. The synergy of these two metal centers located closely by electrostatic interaction enables cross-coupling and multicomponent coupling reactions. For instance, Co–Mg–Li system catalyzed cross-coupling reaction of alkyl halides with tertiary alkyl Grignard reagents to construct quaternary carbon center. The cross-coupling reaction of alkenyl ethers with aryl Grignard reagents via C– O bond cleavage could be achieved with Rh-Mg and Rh-Li combinations. The key catalytic active species containing Rh anion and Li cation was successfully isolated and characterized by X-ray crystallography to clarify a unique structure and reactivity of the Rh-Li complex. In addition, we successfully connected dimerizative transformation of 1,3-dienes promoted by a neutral Ni complex and a C–C bond formation with carbon electrophiles promoted by an anionic Ni complex in one catalytic cycle. The isolation of and structural insight into the anionic Ni complexes clarified the reaction mechanism and the origin of selectivity between multicomponent coupling reaction and competing cross-coupling reaction.
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基于复合金属催化剂的催化碳-碳键形成研究进展
过渡金属催化的C-C键形成是最基本的有机转化之一,过渡金属催化剂的设计是成功的关键。为了同时激活两个偶联伙伴,我们重点研究了过渡金属阴离子和典型金属阳离子的组合。阴离子过渡金属中心本身或自身的配体被阴离子电荷亲核激活,而路易斯酸性典型金属阳离子激活亲电对偶。由于静电相互作用,这两个金属中心的协同作用使交叉耦合和多组分耦合反应成为可能。例如,Co-Mg-Li体系催化烷基卤化物与叔烷基格氏试剂交叉偶联反应,构建季碳中心。Rh-Mg和Rh-Li可以通过C - O键裂解实现烯基醚与芳基格氏试剂的交叉偶联反应。成功分离了含有Rh阴离子和Li阳离子的关键催化活性物质,并用x射线晶体学对其进行了表征,阐明了Rh-Li配合物的独特结构和反应活性。此外,我们成功地在一个催化循环中连接了中性Ni配合物促进的1,3-二烯二聚化转化和阴离子Ni配合物促进的碳亲电试剂的C-C键形成。阴离子镍配合物的分离和结构的深入揭示了多组分偶联反应和竞争性交叉偶联反应的反应机理和选择性的来源。
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