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How phenyl makes a difference: mechanistic insights into the ruthenium(ii)-catalysed isomerisation of allylic alcohols

机译:苯基如何差异:机械洞察钌(II) - 烯丙基醇的催化异构化

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[RuCl(η ~(5) -3-phenylindenyl)(PPh _(3) ) _(2) ] ( 1 ) has been shown to be a highly active catalyst for the isomerisation of allylic alcohols to the corresponding ketones. A variety of substrates undergo the transformation, typically with 0.25–0.5 mol% of catalyst at room temperature, outperforming commonly-used complexes such as [RuCl(Cp)(PPh _(3) ) _(2) ] and [RuCl(η ~(5) -indenyl)(PPh _(3) ) _(2) ]. Mechanistic experiments and density functional theory have been employed to investigate the mechanism and understand the effect of catalyst structure on reactivity. These investigations suggest a oxo-π-allyl mechanism is in operation, avoiding intermediate ruthenium hydride complexes and leading to a characteristic 1,3-deuterium shift. Important mechanistic insights from DFT and experiments also allowed for the design of a protocol that expands the scope of the transformation to include primary allylic alcohols.
机译:[RuCl(η〜(5)-3-苯基茚基)(PPH _(3))_(2)](1)已被证明是一种高活性催化剂,用于使烯丙基醇的异构化对相应的酮。各种底物经历转化,通常在室温下催化剂0.25-0.5mol%,优于常用的络合物,例如[RuCl(CP)(PPH _(3))和[RuCl(η 〜(5) - 茚基)(PPH _(3))_(2)]。机械实验和密度泛函理论探讨了催化剂结构对反应性的影响。这些研究表明,氧代-π-烯丙基机制在运行中,避免中间钌氢化物复合物并导致特征1,3-氘移位。来自DFT和实验的重要机械洞察也允许设计一种扩大转化范围的协议,包括主要烯丙基醇。

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