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[Ni0]催化1,3-丁二烯与乙烯的共齐聚反应:生成直链和环状C10-烯烃竞争途径的理论机理研究

[Ni0]-catalyzed Co-oligomerization of 1,3-butadiene and ethylene: a theoretical mechanistic investigation of competing routes for generation of linear and cyclic C10-olefins.

作者信息

Tobisch Sven

机构信息

Institut für Anorganische Chemie der Martin-Luther-Universität Halle-Wittenberg, Fachbereich Chemie, Kurt-Mothes-Strasse 2, D-06120 Halle, Germany.

出版信息

J Am Chem Soc. 2004 Jan 14;126(1):259-72. doi: 10.1021/ja0388865.

Abstract

A detailed theoretical investigation of the mechanism for the [Ni(0)]-catalyzed co-oligomerization of 1,3-butadiene and ethylene to afford linear and cyclic C(10)-olefins is presented. Crucial elementary processes have been carefully explored for a tentative catalytic cycle, employing a gradient-corrected density functional theory (DFT) method. The favorable route for oxidative coupling starts from the prevalent [Ni(0)(eta(2)-butadiene)(2)(ethylene)] form of the active catalyst through oxidative coupling between the two eta(2)-butadienes. The initial eta(3),eta(1)(C(1))-octadienediyl-Ni(II) product is the active precursor for ethylene insertion, which preferably takes place into the syn-eta(3)-allyl-Ni(II) bond of the prevalent eta(3)-syn,eta(1)(C(1)),Delta-cis isomer. The insertion is driven by a strong thermodynamic force, giving rise entirely to eta(3),eta(1),Delta-trans-decatrienyl-Ni(II) forms, with the eta(3)-anti,eta(1),Delta-trans isomer almost exclusively generated. Occurrence of allyl,eta(1),Delta-cis isomers, however, is precluded on both kinetic and thermodynamic grounds, thereby rationalizing the observation that cis-DT and cis,cis-CDD are never formed. Linear and cyclic C(10)-olefins are generated in a highly stereoselective fashion, with trans-DT and cis,trans-CDD as the only isomers, along competing routes of stepwise transition-metal-assisted H-transfer (DT) and reductive CC elimination under ring closure (CDD), respectively, that start from the prevalent eta(3)-anti,eta(1),Delta-trans-decatrienyl-Ni(II) species. The role of allylic conversion in the octadienediyl-Ni(II) and decatrienyl-Ni(II) complexes has been analyzed. As a result of the detailed exploration of all important elementary steps, a theoretically verified, refined catalytic cycle is proposed and the regulation of the selectivity for formation of linear and cyclic C(10)-olefins is elucidated.

摘要

本文详细地从理论上研究了[Ni(0)]催化1,3 - 丁二烯与乙烯共齐聚生成直链和环状C(10) - 烯烃的反应机理。采用梯度校正密度泛函理论(DFT)方法,对一个初步的催化循环中关键的基元过程进行了仔细探究。氧化偶联的有利途径始于活性催化剂普遍存在的[Ni(0)(η(2)-丁二烯)(2)(乙烯)]形式,通过两个η(2)-丁二烯之间的氧化偶联反应进行。最初生成的η(3),η(1)(C(1)) - 辛二烯二基 - Ni(II)产物是乙烯插入反应的活性前体,乙烯优先插入到普遍存在的η(3)-顺式,η(1)(C(1)),Δ-顺式异构体的顺式 - η(3)-烯丙基 - Ni(II)键中。该插入反应由强大的热力学驱动力驱动,完全生成η(3),η(1),Δ-反式 - 癸三烯基 - Ni(II)形式,几乎只生成η(3)-反式,η(1),Δ-反式异构体。然而,由于动力学和热力学原因,烯丙基,η(1),Δ-顺式异构体不会出现,这就解释了为何从未生成顺式 - DT和顺式,顺式 - CDD的现象。直链和环状C(10) - 烯烃以高度立体选择性的方式生成,反式 - DT和顺式,反式 - CDD分别是唯一的异构体,它们分别沿着逐步过渡金属辅助的氢转移(DT)和环化过程中的还原碳 - 碳消除(CDD)这两条竞争途径生成,这两条途径均始于普遍存在的η(3)-反式,η(1),Δ-反式 - 癸三烯基 - Ni(II)物种。分析了烯丙基转化在辛二烯二基 - Ni(II)和癸三烯基 - Ni(II)配合物中的作用。通过对所有重要基元步骤的详细探究,提出了一个经过理论验证的精细催化循环,并阐明了直链和环状C(10) - 烯烃生成选择性的调控机制。

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