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Merging allylic carbon-hydrogen and selective carbon-carbon bond activation

机译:合并烯丙基碳氢和选择性碳碳键活化

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摘要

Since the nineteenth century, many synthetic organic chemists have focused on developing new strategies to regio-, diastereo- and enan-tioselectively build carbon-carbon and carbon-heteroatom bonds in a predictable and efficient manner. Ideal syntheses should use the least number of synthetic steps, with few or no functional group transformations and by-products, and maximum atom efficiency. One potentially attractive method for the synthesis of molecular skeletons that are difficult to prepare would be through the selective activation of C-H and C-C bonds, instead of the conventional construction of new C-C bonds. Here we present an approach that exploits the multifold reactivity of easily accessible substrates with a single organometallic species to furnish complex molecular scaffolds through the merging of otherwise difficult transformations: allylic C-H and selective C-C bond activations. The resulting bifunctional nucleophilic species, all of which have an all-carbon quaternary stereogenic centre, can then be selectively derivatized by the addition of two different electrophiles to obtain more complex molecular architecture from these easily available starting materials.
机译:自19世纪以来,许多合成有机化学家一直致力于开发新策略,以可预测和有效的方式在区域,非对映体和对映体选择性地建立碳-碳和碳-杂原子键。理想的合成应使用最少数量的合成步骤,几乎没有或完全没有官能团转化和副产物,以及最大的原子效率。一种难以制备的合成分子骨架的潜在有吸引力的方法是通过选择性激活C-H和C-C键,而不是传统的新C-C键结构。在这里,我们提出了一种方法,该方法利用单一有机金属物种的易于获得的底物的多重反应性,通过合并其他困难的转化过程来提供复杂的分子支架:烯丙基C-H和选择性C-C键活化。然后,可以通过添加两种不同的亲电试剂,选择性地衍生化所有具有全碳四级立体中心的双功能亲核试剂,从而从这些容易获得的起始原料中获得更复杂的分子结构。

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  • 来源
    《Nature》 |2014年第7482期|199-203|共5页
  • 作者单位

    The Mallat Family Laboratory of Organic Chemistry, Schulich Faculty of Chemistry and the Lise Meitner-Minerva Center for Computational Quantum Chemistry, Technion-lsrael Institute of Technology, Haifa 32000, Israel;

    The Mallat Family Laboratory of Organic Chemistry, Schulich Faculty of Chemistry and the Lise Meitner-Minerva Center for Computational Quantum Chemistry, Technion-lsrael Institute of Technology, Haifa 32000, Israel;

    The Mallat Family Laboratory of Organic Chemistry, Schulich Faculty of Chemistry and the Lise Meitner-Minerva Center for Computational Quantum Chemistry, Technion-lsrael Institute of Technology, Haifa 32000, Israel;

    Institut Fur Organische und Biomolekulare Chemie, Georg-August-Universitaet, Goettingen, Tammannstrasse 2,37077 Goettingen, Germany;

    Institut Fur Organische und Biomolekulare Chemie, Georg-August-Universitaet, Goettingen, Tammannstrasse 2,37077 Goettingen, Germany;

    The Mallat Family Laboratory of Organic Chemistry, Schulich Faculty of Chemistry and the Lise Meitner-Minerva Center for Computational Quantum Chemistry, Technion-lsrael Institute of Technology, Haifa 32000, Israel;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
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  • 正文语种 eng
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