首页> 外文期刊>The Journal of Organic Chemistry >Mechanistic Study of SmI2/H2O and SmI2/Amine/H2O-Promoted Chemoselective Reduction of Aromatic Amides (Primary, Secondary, Tertiary) to Alcohols via Aminoketyl Radicals
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Mechanistic Study of SmI2/H2O and SmI2/Amine/H2O-Promoted Chemoselective Reduction of Aromatic Amides (Primary, Secondary, Tertiary) to Alcohols via Aminoketyl Radicals

机译:SMI2 / H2O和SMI2 /胺/ H2O-促进芳族酰胺(初级,仲,叔季)对醇的化学选择的机械研究

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摘要

Samarium(II) iodide water and samarium(II) iodide water-amine complexes have been recognized as valuable reagents for the selective generation of aminoketyl radicals from amides and derivatives. The resulting aminoketyl radicals can undergo reduction or reductive cyclization pathways, providing a powerful method for (i) direct synthesis of alcohols from amides by the challenging N-C bond scission and (ii) synthesis of nitrogen-containing heterocycles via polarity reversal of the amide bond. This report describes mechanistic investigation into samarium(II) iodide water and samarium(II) iodide water amine-mediated generation of benzylic aminoketyl radicals from aromatic primary, secondary, and tertiary amides (benzamides). The mechanistic experiments suggest that the rate and selectivity of the reduction is closely dependent on the water concentration and the type of amide undergoing the reduction. The data also suggest that benzylic aminoketyl radicals generated in the reduction of benzamides are significantly more dependent on the electronic effects of alpha(-)substitution than the corresponding aminoketyl radicals generated by single electron transfer to unactivated aliphatic amides; however, little variation in terms of steric influence of N-substituents is observed. These observations will have implications for the design of reductive processes involving Sm(II)-mediated reduction of amides and reductive umpolung cyclizations via aminoketyl radicals as a key step.
机译:钐(II)碘化物水和钐(II)碘化物水 - 胺配合物已被认为是用于从酰胺和衍生物的选择性产生氨基氧基氨基酰基的有价值的试剂。所得氨基乙基自由基可以经历还原或还原的环化途径,提供了一种强大的方法(i)通过挑战的N-C粘合裂殖群和(ii)通过酰胺键的极性逆转来直接合成来自酰胺的氨基酰基的醇。本报告描述了钐(II)碘化物水和钐(II)碘化物胺介导的苄基氨基酰基自由基的机械调查,从芳族初级,仲酰胺(苯甲酰酰胺)中介导的苄基氨基乙基自由基。机械实验表明,减少的速率和选择性密切依赖于水浓度和酰胺类型的酰胺。数据还表明,在苯甲酰胺的还原中产生的苄基氨基乙基自由基显着提高α( - )取代的电子效应而不是通过单电子转移产生的相应氨基乙基自由基,以对未激活的脂族酰胺产生;然而,观察到N-取代基的空间影响几乎没有变化。这些观察结果对涉及SM(II)介断的减少酰胺和还原的umpolung环戊的还原过程具有影响,通过氨基乙基作为关键步骤。

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  • 来源
    《The Journal of Organic Chemistry》 |2017年第13期|共13页
  • 作者单位

    Rutgers State Univ Dept Chem 73 Warren St Newark NJ 07102 USA;

    Rutgers State Univ Dept Chem 73 Warren St Newark NJ 07102 USA;

    Rutgers State Univ Dept Chem 73 Warren St Newark NJ 07102 USA;

    Rutgers State Univ Dept Chem 73 Warren St Newark NJ 07102 USA;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 有机化学;
  • 关键词

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