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Platinum(II)-catalyzed cyclization sequence of aryl alkynes via C(sp ~3)-H activation: A DFT study

机译:铂(II)通过C(sp〜3)-H活化催化芳基炔烃的环化序列:DFT研究

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The mechanism and intermediates of hydroalkylation of aryl alkynes via C(sp ~3)-H activation through a platinum(II)-centered catalyst are investigated with density functional theory at the B3LYP/[6-31G(d) for H, O, C; 6-31+G(d,p) for F, Cl; SDD for Pt] level of theory. Solvent effects on reactions were explored using calculations that included a polarizable continuum model for the solvent (THF). Free energy diagrams for three suggested mechanisms were computed: (a) one that leads to formation of a Pt(II) vinyl carbenoid (Mechanism A), (b) another where the transition state implies a directed 1,4-hydrogen shift (Mechanism B), and (c) one with a Pt-aided 1,4-hydrogen migration (Mechanism C). Results suggest that the insertion reaction pathway of Mechanism A is reasonable. Through 4,5-hydrogen transfer, the Pt(II) vinyl carbenoid is formed. Thus, the stepwise insertion mechanism is favored while the electrocyclization mechanism is implausible. Electron-withdrawing/electron- donating groups substituted at the phenyl and benzyl sp ~3 C atoms slightly change the thermodynamic properties of the first half of Mechanism A, but electronic effects cause a substantial shift in relative energies for the second half of Mechanism A. The rate-limiting step can be varied between the 4,5-hydrogen shift process and the 1,5-hydrogen shift step by altering electron-withdrawing/electron-donating groups on the benzyl C atom. Additionally, NBO and AIM analyses are applied to further investigate electronic structure changes during the mechanism.
机译:通过密度泛函理论在B3LYP / [6-31G(d)上针对H,O,C,C,C,C和C进行了C(sp〜3)-H活化,通过C(sp〜3)-H活化芳基炔烃的机理和中间体。 C; F,Cl为6-31 + G(d,p); SDD为Pt]的理论水平。使用计算方法探索了溶剂对反应的影响,该计算方法包括溶剂(THF)的可极化连续体模型。计算了三种建议机理的自由能图:(a)一种导致形成Pt(II)乙烯基类胡萝卜素的机理(机理A),(b)另一种过渡态暗示了直接1,4-氢转移的机理(机理) B)和(c)一种具有Pt辅助的1,4-氢迁移的化合物(机理C)。结果表明,机理A的插入反应途径是合理的。通过4,5-氢转移,形成了Pt(II)乙烯基类胡萝卜素。因此,有利于逐步插入机制,而使电环化机制难以置信。在苯基和苄基sp〜3 C原子处取代的吸电子/供电子基团略微改变了机理A后半部分的热力学性质,但是电子效应导致机理A后半部分的相对能量发生了大幅变化。通过改变苄基C原子上的吸电子/给电子基团,可以在4,5-氢转移过程和1,5-氢转移步骤之间改变限速步骤。此外,NBO和AIM分析被应用于进一步研究该机制期间电子结构的变化。

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