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首页> 外文期刊>Organometallics >Catalytic linear oligomerization of ethylene to higher alpha-olefins: Insight into the origin of the selective generation of 1-hexene promoted by a cationic cyclopentadienyl-arene titanium active catalyst
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Catalytic linear oligomerization of ethylene to higher alpha-olefins: Insight into the origin of the selective generation of 1-hexene promoted by a cationic cyclopentadienyl-arene titanium active catalyst

机译:乙烯催化线性低聚成高级α-烯烃:阳离子环戊二烯基-芳烃钛活性催化剂促进选择性生成1-己烯的起源的见解

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A detailed theoretical investigation is presented of crucial elementary steps of the selective linear ethylene oligomerization to 1-hexene by the cationic [(mu(5)-C5H4-(CMe2)-bridge)-C6H5)-Ti-IV(CH3)(2)](+) precatalyst, employing a gradient-corrected DFT method. The essential aspects of the originally proposed mechanism have been confirmed and supplemented by novel insights into how the selective ethylene oligomerization operates. This includes the examination of the ability of titana(IV)cycle intermediates to grow and/or to decompose affording alpha-olefins as a function of their size, the prediction of the favorable route for precatalyst activation, and the exploration of the cycloalkane production as a possible side process. After the Ti-IV-Me-2 precatalyst is smoothly converted into the active Ti-II-(ethylene)(2) catalyst complex, the two ethylene moieties readily undergo oxidative coupling to afford first the titana(IV)cyclopentane species. Metallacycle growth through bimolecular ethylene uptake and subsequent insertion displays very similar structural and energetic characteristics for five- and seven-membered titana(IV)cycles. Decomposition of titana(IV)cycles to alpha-olefins preferably takes place via a concerted transition-metal-assisted beta-H transfer for conformationally flexible metallacycles beginning with the titana(IV)cycloheptane, with very similar barriers having to be overcome. This decomposition path, however, is kinetically inaccessible for the rigid five-membered titana(IV)cyclopentane. Instead, the stepwise mechanism via a metastable Ti-IV-alkenyl-hydride species is found to be operative in this case. A significantly raised activation barrier is connected with the stepwise path, which makes the growth of the titana(IV)cyclopentane to the seven-membered cycle the more favorable process than its decomposition to 1-butene. Cycloalkanes are less likely to be formed, due to a kinetically handicapped reductive CC elimination. On the basis of the detailed insights into the ability of titana(IV)cycles to undergo either growth or decomposition to alpha-olefins, the thermodynamic and kinetic aspects for the selectivity control of the linear ethylene oligomerization have been rationalized. The crucial role played by the hemilabile arene ligand for the selective oligomerization process has also been analyzed. [References: 49]
机译:详细的理论研究表明了阳离子[[mu(5)-C5H4-(CMe2)-桥)-C6H5)-Ti-IV(CH3)(2)选择性线性乙烯低聚为1-己烯的关键基本步骤)](+)预催化剂,采用梯度校正DFT方法。最初提出的机制的基本方面已经通过对选择性乙烯低聚作用方式的新颖见解得到了证实和补充。这包括检查钛(IV)循环中间体生长和/或分解所提供的α-烯烃的能力(取决于它们的大小),预测前催化剂活化的有利途径以及探索环烷烃生产的能力。一个可能的副过程。在Ti-IV-Me-2预催化剂顺利转化为活性Ti-II-(乙烯)(2)催化剂配合物后,两个乙烯部分易于进行氧化偶联,首先得到二氧化钛(IV)环戊烷。通过双分子乙烯的吸收和随后插入的金属环的生长对于五元和七元二氧化钛(IV)循环显示出非常相似的结构和能量特征。钛(IV)环分解为α-烯烃优选地通过协同过渡金属辅助的β-H转移而发生,以钛(IV)环庚烷开始的构象柔性金属环,必须克服非常相似的障碍。但是,对于刚性的五元二氧化钛(IV)环戊烷,该分解途径在动力学上是不可及的。相反,发现在这种情况下通过亚稳态的Ti-IV-烯基-氢化物物质的逐步机理是有效的。明显提高的活化势垒与阶梯式路径相关,这使得二氧化钛(IV)环戊烷向七元循环的生长比其分解成1-丁烯的过程更为有利。由于动力学上有缺陷的还原性CC消除,因此不太可能形成环烷烃。基于对二氧化钛(IV)循环进行生长或分解为α-烯烃的能力的深入了解,已合理地控制了线性乙烯低聚反应的选择性的热力学和动力学方面。还分析了半不稳定的芳烃配体在选择性低聚过程中的关键作用。 [参考:49]

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