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Cobalt-Catalyzed Cyclotrimerization of Alkynes: The Answer to the Puzzle of Parallel Reaction Pathways

机译:钴催化的炔烃环三聚合:平行反应途径之谜的答案

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摘要

To understand some experimental data at odds with the computed mechanism of the CpCo-(L_2)-catalyzed [2 + 2 + 2] Cyclotrimerization of ethyne, DFT computations were carried out following the fate of methyl- and hydroxycarbonyl-substituted alkynes to give the corresponding arenes. The key intermediate in all cases is a triplet cobaltacyclopentadiene obtained by oxidative coupling of the corresponding CpCo(bisalkyne) complex and subsequent spin change via a minimum energy crossing point (MECP). From that species, two different catalytic cycles lead to an arene product, depending on the nature of the alkyne and other ligands present: either alkyne ligation to furnish a cobaltacyclopentadiene-(alkyne) intermediate or trapping by a σ-donor ligand to generate a coordinatively saturated cobaltacyclo-pentadiene(PR_3) complex. The former leads to the CpCo-complexed arene product via intramolecular cobalt-assisted [4 + 2] cycloaddition, whereas the latter may, in the case of a reactive dienophile (butynedioic acid), undergo direct intermolecular[4 + 2] cycloaddition to generate a cobaltanorbornene. The bridgehead cobalt atom is then reductively eliminated after another change in spin state from singlet to triplet. The necessary conditions for one or the other mechanistic pathway are elaborated.
机译:为了了解一些实验数据与CpCo-(L_2)催化的[2 + 2 + 2]乙炔环三聚反应的计算机理不一致,在甲基和羟羰基取代炔烃的结局进行了DFT计算,得到了相应的竞技场。在所有情况下,关键的中间体都是三重态钴环戊二烯,它是通过相应的CpCo(bisalkyne)配合物的氧化偶联和随后通过最小能量穿越点(MECP)的自旋变化获得的。从该物种中,两个不同的催化循环会生成芳烃产物,具体取决于炔烃和其他配体的性质:炔烃连接以提供钴环戊二烯-(炔烃)中间体,或被σ-供体配体捕获以产生配位化合物饱和钴环戊二烯(PR_3)配合物。前者通过分子内钴辅助的[4 + 2]环加成反应生成CpCo复杂的芳烃产物,而后者在反应性双烯亲二酸(丁炔二酸)的情况下,可能直接进行分子间[4 + 2]环加成反应生成钴鞣花胶。然后,自旋态从单重态变为三重态之后,桥头钴原子被还原消除。详细阐述了一种或另一种机械途径的必要条件。

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