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Nickel-catalyzed coupling reaction of alkyl halides with aryl Grignard reagents in the presence of 13-butadiene: mechanistic studies of four-component coupling and competing cross-coupling reactions

机译:13-丁二烯存在下镍催化卤代烷与芳基格氏试剂的偶联反应:四组分偶联和竞争交叉偶联机理的研究

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摘要

We describe the mechanism, substituent effects, and origins of the selectivity of the nickel-catalyzed four-component coupling reactions of alkyl fluorides, aryl Grignard reagents, and two molecules of 1,3-butadiene that affords a 1,6-octadiene carbon framework bearing alkyl and aryl groups at the 3- and 8-positions, respectively, and the competing cross-coupling reaction. Both the four-component coupling reaction and the cross-coupling reaction are triggered by the formation of anionic nickel complexes, which are generated by the oxidative dimerization of two molecules of 1,3-butadiene on Ni(0) and the subsequent complexation with the aryl Grignard reagents. The C–C bond formation of the alkyl fluorides with the γ-carbon of the anionic nickel complexes leads to the four-component coupling product, whereas the cross-coupling product is yielded via nucleophilic attack of the Ni center toward the alkyl fluorides. These steps are found to be the rate-determining and selectivity-determining steps of the whole catalytic cycle, in which the C–F bond of the alkyl fluorides is activated by the Mg cation rather than a Li or Zn cation. ortho-Substituents of the aryl Grignard reagents suppressed the cross-coupling reaction leading to the selective formation of the four-component products. Such steric effects of the ortho-substituents were clearly demonstrated by crystal structure characterizations of ate complexes and DFT calculations. The electronic effects of the para-substituent of the aryl Grignard reagents on both the selectivity and reaction rates are thoroughly discussed. The present mechanistic study offers new insight into anionic complexes, which are proposed as the key intermediates in catalytic transformations even though detailed mechanisms are not established in many cases, and demonstrates their synthetic utility as promising intermediates for C–C bond forming reactions, providing useful information for developing efficient and straightforward multicomponent reactions.
机译:我们描述了烷基氟化物,芳基格氏试剂和两个提供1,6-辛二烯碳骨架的1,3-丁二烯分子的镍催化四组分偶联反应的机理,取代基效应和选择性的起源。分别在3和8位带有烷基和芳基,以及相互竞争的交叉偶联反应。阴离子镍络合物的形成触发了四组分偶联反应和交叉偶联反应,这是由两个分子的1,3-丁二烯在Ni(0)上的氧化二聚化以及随后与Ni(0)的络合而产生的。芳基格氏试剂。烷基氟化物与阴离子镍配合物的γ-碳的C–C键形成导致四组分偶联产物,而交叉偶联产物是通过Ni中心对烷基氟化物的亲核攻击而产生的。发现这些步骤是整个催化循环的速率决定和选择性决定步骤,其中烷基氟化物的CF键是由Mg阳离子而不是Li或Zn阳离子活化的。芳基格氏试剂的邻位取代基抑制了交叉偶联反应,导致选择性形成四组分产物。通过取代物的晶体结构表征和DFT计算可以清楚地证明邻位取代基的这种空间效应。彻底讨论了芳基格氏试剂的对位取代基对选择性和反应速率的电子影响。本机理研究提供了对阴离子配合物的新见解,尽管在许多情况下尚未建立详细的机理,但阴离子配合物被认为是催化转化的关键中间体,并证明了它们的合成用途可作为CC键形成反应的有希望的中间体,提供了有用的信息。开发有效和直接的多组分反应的信息。

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