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Dealkanative Main Group Couplings across the peri-Gap

机译:跨间隙的Dealkanative主组联轴器

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摘要

Here, we highlight the ability of peri-substitution chemistry to promote a series of unique P–P/P–As coupling reactions, which proceed with concomitant C–H bond formation. This dealkanative reactivity represents an interesting and unexpected expansion to the established family of main-group dehydrocoupling reactions. These transformations are exceptionally clean, proceeding essentially quantitatively at relatively low temperatures (70–140 °C), with 100% diastereoselectivity in the products. The reaction appears to be radical in nature, with the addition of small quantities of a radical initiator (azobis(isobutyronitrile)) increasing the rate dramatically, as well as altering the apparent order of reaction. DFT calculations suggest that the reaction involves dissociation of a phosphorus centered radical (stabilized by the peri-backbone) to the P–P coupled product and a free propyl radical, which carries the chain. This unusual reaction demonstrates the powerful effect that geometric constraints, in this case a rigid scaffold, can have on the reactivity of main group species, an area of research that is gaining increasing prominence in recent years.
机译:在这里,我们强调了取代周围化学促进一系列独特的P–P / P–As偶联反应的能力,这些反应伴随着C–H键的形成。这种脱脱烷反应性代表了已建立的主要基团脱氢偶联反应家族的有趣且出乎意料的扩展。这些转变非常干净,基本上在相对较低的温度(70–140°C)下定量进行,产物中的非对映选择性为100%。该反应在本质上似乎是自由基的,添加少量的自由基引发剂(偶氮二(异丁腈))可显着提高反应速率,并改变表观反应顺序。 DFT计算表明,该反应涉及以磷为中心的自由基(通过骨干骨架稳定)解离为P-P偶联产物和带有该链的游离丙基。这种不寻常的反应表明,几何约束(在这种情况下为刚性脚手架)可能对主要族种的反应性产生强大影响,这是近年来研究领域日益突出的领域。

著录项

  • 来源
    《Journal of the American Chemical Society》 |2017年第51期|18545-18551|共7页
  • 作者单位

    University of St Andrews, School of Chemistry, Purdie Building, North Haugh, St Andrews, Fife KY16 9ST, United Kingdom of Great Britain and Northern Ireland;

    University of St Andrews, School of Chemistry, Purdie Building, North Haugh, St Andrews, Fife KY16 9ST, United Kingdom of Great Britain and Northern Ireland;

    University of St Andrews, School of Chemistry, Purdie Building, North Haugh, St Andrews, Fife KY16 9ST, United Kingdom of Great Britain and Northern Ireland;

    University of St Andrews, School of Chemistry, Purdie Building, North Haugh, St Andrews, Fife KY16 9ST, United Kingdom of Great Britain and Northern Ireland;

    University of St Andrews, School of Chemistry, Purdie Building, North Haugh, St Andrews, Fife KY16 9ST, United Kingdom of Great Britain and Northern Ireland;

    University of St Andrews, School of Chemistry, Purdie Building, North Haugh, St Andrews, Fife KY16 9ST, United Kingdom of Great Britain and Northern Ireland;

    University of St Andrews, School of Chemistry, Purdie Building, North Haugh, St Andrews, Fife KY16 9ST, United Kingdom of Great Britain and Northern Ireland;

    University of St Andrews, School of Chemistry, Purdie Building, North Haugh, St Andrews, Fife KY16 9ST, United Kingdom of Great Britain and Northern Ireland;

    University of St Andrews, School of Chemistry, Purdie Building, North Haugh, St Andrews, Fife KY16 9ST, United Kingdom of Great Britain and Northern Ireland;

    University of St Andrews, School of Chemistry, Purdie Building, North Haugh, St Andrews, Fife KY16 9ST, United Kingdom of Great Britain and Northern Ireland;

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  • 正文语种 eng
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  • 入库时间 2022-08-18 03:08:11

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