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Acyclic or long-bond intermediate in the electron-transfer-catalyzed dimerization of 4-methoxystyrene

机译:电子转移催化的4-甲氧基苯乙烯二聚反应中的无环或长键中间体

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The electron-transfer-catalyzed dimerization of 4-methoxystyrene has long been a prototypical reaction for the study of radical cation reactivity. The different possible pathways were explored at the B3LYP/6-31G* level of theory. Both [2 + 2] and [4 + 2] cycloadditions proceed via a stepwise pathway, diverging at an acyclic intermediate and interconnected by a vinylcyclobutane-type rearrangement. The experimentally observed stereoselectivity of the cycloaddition was traced to relatively high barriers for isomerization, while the previously described "long-bond" intermediate could not be located at the higher level of theory. CPCM calculations show that the highly exothermic [4 + 2] pathway becomes kinetically more favorable in condensed phase. Time-dependent density functional theory calculations indicate that the different possible intermediates have very similar absorption spectra, making the unambiguous assignment of the experimentally observed transient absorption of 500 nm to a given species difficult.
机译:长期以来,4-甲氧基苯乙烯的电子转移催化二聚反应一直是研究自由基阳离子反应性的典型反应。在B3LYP / 6-31G *理论水平上探索了不同的可能途径。 [2 + 2]和[4 + 2]的环加成均通过逐步途径进行,在无环中间体处发散并通过乙烯基环丁烷型重排相互连接。实验观察到的环加成反应的立体选择性可追溯到较高的异构化障碍,而先前描述的“长键”中间体不能位于较高的理论水平。 CPCM计算表明,在凝聚相中,高放热的[4 + 2]途径在动力学上变得更加有利。随时间变化的密度泛函理论计算表明,不同的中间体可能具有非常相似的吸收光谱,从而难以将实验观察到的500 nm瞬态吸收明确分配给给定物种。

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