Tobisch Sven
Institut für Anorganische Chemie der Martin-Luther-Universität Halle-Wittenberg, Fachbereich Chemie, Germany.
Chemistry. 2005 Oct 21;11(21):6372-85. doi: 10.1002/chem.200500355.
The complete catalytic reaction course for the organolanthanide-mediated intermolecular hydroamination of 1,3-butadiene and n-propylamine by an archetypical [Me2Si(eta5-Me4C5)2NdCH(SiMe3)2] precatalyst was critically scrutinized by employing a reliable gradient-corrected DFT method. A free-energy profile of the overall reaction is presented that is based on the thorough characterization of all crucial elementary steps for a tentative catalytic cycle. A computationally verified, revised mechanistic scenario is proposed which is consistent with the experimentally derived empirical rate law and accounts for crucial experimental observations. It involves kinetically mobile reactant association/dissociation equilibria and facile, reversible intermolecular diene insertion into the Nd-amido bond, linked to turnover-limiting protonolysis of the eta3-butenyl-Nd functionality. The computationally predicted effective kinetics (Delta(tot) = 11.3 kcal mol(-1), Delta(tot) = -35.7 e.u.) are in reasonably good agreement with experimental data for the thoroughly studied hydroamination of alkynes. The thermodynamic and kinetic factors that determine the almost complete regio- and stereoselectivity of the mechanistically diverse intermolecular 1,3-diene hydroamination have been unraveled. The present computational study complements experiments because it allows, first, a more detailed understanding and a consistent rationalization of the experimental results for the hydroamination of 1,3-dienes and primary amines and, second, enhances the insights into general mechanistic aspects of organolanthanide-mediated intermolecular hydroamination.
采用可靠的梯度校正密度泛函理论(DFT)方法,对典型的[Me2Si(η5-Me4C5)2NdCH(SiMe3)2]预催化剂介导的1,3 - 丁二烯与正丙胺的分子间氢胺化反应的完整催化反应过程进行了严格审查。基于对暂定催化循环中所有关键基元步骤的全面表征,给出了整个反应的自由能剖面图。提出了一种经计算验证的、修订后的机理方案,该方案与实验得出的经验速率定律一致,并解释了关键的实验观察结果。它涉及动力学上可移动的反应物缔合/解离平衡以及分子间二烯向钕 - 酰胺键的 facile、可逆插入,这与η3 - 丁烯基 - 钕官能团的周转限制质子解相关。计算预测的有效动力学(Δ(tot) = 11.3 kcal mol(-1),Δ(tot) = -35.7 e.u.)与对充分研究的炔烃氢胺化反应的实验数据相当吻合。已经揭示了决定机理多样的分子间1,3 - 二烯氢胺化几乎完全的区域和立体选择性的热力学和动力学因素。本计算研究对实验起到了补充作用,因为它首先允许对1,3 - 二烯和伯胺的氢胺化反应的实验结果有更详细的理解和一致的合理化解释,其次增强了对有机镧系元素介导的分子间氢胺化一般机理方面的认识。