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Mechanistic insight into palladium-catalyzed cycloisomerization: a combined experimental and theoretical study

机译:钯催化环异构化的机理研究:结合实验和理论研究

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摘要

The cycloisomerization of enynes catalyzed by Pd(OAc)2 and bis-benzylidene ethylenediamine (bbeda) is a landmark methodology in transition-metal-catalyzed cycloisomerization. However, the mechanistic pathway by which this reaction proceeds has remained unclear for several decades. Here we describe mechanistic investigations into this reaction using enynamides, which deliver azacycles with high regio- and stereocontrol. Extensive (1)H NMR spectroscopic studies and isotope effects support a palladium(II) hydride-mediated pathway and reveal crucial roles of bbeda, water, and the precise nature of the Pd(OAc)2 pre-catalyst. Computational studies support these mechanistic findings and lead to a clear picture of the origins of the high stereocontrol that can be achieved in this transformation, as well as suggesting a novel mechanism by which hydrometalation proceeds.
机译:由Pd(OAc)2和双亚苄基乙二胺(bbeda)催化的烯炔的环异构化是过渡金属催化的环异构化的标志性方法。但是,该反应进行的机理途径几十年来一直不清楚。在这里,我们描述了使用烯丙酰胺对该反应进行的机理研究,所述烯丙酰胺可提供具有高度区域和立体控制的氮杂环。广泛的(1)H NMR光谱研究和同位素效应支持氢化钯(II)介导的途径,并揭示了bbeda,水和Pd(OAc)2预催化剂的精确性质的关键作用。计算研究支持了这些机制的发现,并清楚地说明了在这种转化过程中可以实现的高立体控制的起源,并提出了进行加氢金属化的新机制。

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