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首页> 外文期刊>Chemistry: A European journal >Mechanism of Ketone Allylation with Allylboronates as Catalyzed by Zinc Compounds: A DFT Study
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Mechanism of Ketone Allylation with Allylboronates as Catalyzed by Zinc Compounds: A DFT Study

机译:锌化合物催化烯丙基硼酸酯与酮烯丙基化的机理:DFT研究

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The mechanism of the allylation reaction between 4-chloroacetophenone and pinacol allylboronates catalyzed by ZnEt_2 with alcohols was investigated using density functional theory (DFT) at the M05-2X/6-311++G(d,p) level. The calculations reveal that the reaction prefers to proceed through a double γ-addition stepwise reaction mechanism rather than a Lewis acid-catalyzed concerted one. The intermediate with a four-coordinated boron center, which is formed through proton transfer from EtOH to the ethyl group of ZnEt_2 mediated by the boron center, is the active species and an entrance for the catalytic cycle. The latter is composed of three elementary steps: 1) boron to zinc transmetalation leading to the formation of allylzincate species, 2) electrophilic addition of ketone to allylzincate species, and 3) generation of the final product with recovery of the catalyst. The boron to zinc transmetalation step has the largest energy barrier of 61.0 kJmol~(-1) and is predicted to be the rate-determining step. The calculations indicate that the additive EtOH plays important roles both in lowering the activation free energy for the formation of the four-coordinated boron active intermediate and in transforming the low catalytic activity ZnEt_2 into high activity zinc alkoxide species. The alcohols with a less sterically encumbering R group might be the effective additives. The substituted groups on the allylboronates might primarily affect the boron to zinc transmetalation, and the allylboronates with substituents on the C_γatom is poor in reactivity. The comparison of the catalytic effect between the zinc compounds investigated suggest that Zn(OEt)_2, Zn(OH)_2, and ZnF_2 exhibit higher catalytic efficiency for the boron to zinc transmetalation due to the activation of the B-C_a bond through orbital interactions between the p orbitals of the EtO, OH, F groups and the empty p orbital of the boron center.
机译:利用密度泛函理论(DFT)在M05-2X / 6-311 ++ G(d,p)水平上研究了ZnEt_2与醇催化4-氯苯乙酮与频哪醇烯丙基硼酸酯之间的烯丙基化反应机理。计算表明,该反应更倾向于通过双γ加成的逐步反应机理而不是路易斯酸催化的协同机理进行。具有四配位硼中心的中间体是活性物种,是催化循环的入口,该中心是通过将质子从EtOH转移到由硼中心介导的ZnEt_2的乙基上而形成的。后者由三个基本步骤组成:1)硼到锌的金属转移,导致形成烯丙基锌的物质; 2)亲电加成酮到烯丙基锌的物质,和3)生成最终产物并回收催化剂。硼到锌的过渡金属化步骤具有最大的能量垒,为61.0 kJmol〜(-1),并被认为是决定速率的步骤。计算表明,添加剂EtOH在降低形成四配位硼活性中间体的活化自由能以及将低催化活性ZnEt_2转变为高活性烷氧基锌方面都起着重要作用。具有较小空间上R基团的醇可能是有效的添加剂。烯丙基硼酸酯上的取代基可能主要影响硼到锌的金属转移,并且在C_γ原子上具有取代基的烯丙基硼酸酯的反应性差。所研究的锌化合物之间的催化作用的比较表明,Zn(OEt)_2,Zn(OH)_2和ZnF_2对B到C_a键通过轨道相互作用的活化表现出更高的催化硼到锌的过渡金属转化的效率。在EtO,OH,F基团的p轨道与硼中心的空p轨道之间。

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