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首页> 外文期刊>Chemistry: A European journal >Phosphoric Acid Catalyzed Enantioselective Transfer Hydrogenation of Imines: A Density Functional Theory Study of Reaction Mechanism and the Origins of Enantioselectivity
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Phosphoric Acid Catalyzed Enantioselective Transfer Hydrogenation of Imines: A Density Functional Theory Study of Reaction Mechanism and the Origins of Enantioselectivity

机译:磷酸催化亚胺的对映选择性加氢:反应机理的密度泛函理论研究和对映选择性的起源

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The phosphoric acid catalyzed reaction of 1,4-dihydropyridines with N-arylimines has been investigated by using density functional theory. We first considered the reaction of acetophenone PMP-imine (PMP=p-methoxyphenyl) with the dimethyl Hantzsch ester catalyzed by diphenyl phosphate. Our study showed that, in agreement with what has previously been postulated for other reactions, diphenyl phosphate acts as a Lewis base/ Bronsted acid bifunctional catalyst in this transformation, simultaneously activating both reaction partners. The calculations also showed that the hydride transfer transition states for the E and Z isomers of the iminium ion have comparable energies. This observation turned out to be crucial to the understanding of the enantioselectivity of the process. Our results indicate that when using a chiral 3,3'-disubstituted biaryl phosphoric acid, hydride transfer to the Re face of the (Z)-iminium is energetically more favorable and is responsible for the enantioselectivity, whereas the corresponding transition states for nucleophilic attack on the two faces of the (E)-iminium are virtually degenerate. Moreover, model calculations predict the reversal in enantioselectivity observed in the hydrogenation of 2-arylquinolines, which during the catalytic cycle are converted into (E)-iminium ions that lack the flexibility of those derived from acyclic N-arylimines. In this respect, the conformational rigidity of the dihydroquinolinium cation imposes an unfavorable binding geometry on the transition state for hydride transfer on the Re face and is therefore responsible for the high enantioselectivity.
机译:利用密度泛函理论研究了磷酸催化的1,4-二氢吡啶与N-芳氨酸的反应。我们首先考虑了苯乙酮PMP-亚胺(PMP =对甲氧基苯基)与磷酸二苯酯催化的二甲基Hantzsch酯的反应。我们的研究表明,与先前假定的用于其他反应的一致,磷酸二苯酯在该转化中充当路易斯碱/布朗斯台德酸双官能催化剂,同时激活了两个反应伙伴。计算还表明,亚胺离子的E和Z异构体的氢化物转移过渡态具有可比的能量。事实证明,这一发现对于理解该方法的对映选择性至关重要。我们的结果表明,当使用手性3,3'-二取代联芳基磷酸时,氢化物转移至(Z)-亚胺基的Re面在能量上更有利,并且对映选择性较高,而亲核进攻的相应过渡态(E)-亚胺基的两个面上的原子实际上是简并的。此外,模型计算预测了在2-芳基喹啉氢化中观察到的对映选择性的逆转,其在催化循环中被​​转化为(E)-亚胺离子,其缺乏衍生自无环N-芳基丙氨酸的那些的灵活性。在这方面,二氢喹啉鎓阳离子的构象刚度在过渡态上不利地结合了几何结构,从而使氢化物转移到Re面上,因此导致高对映选择性。

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