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Impact of Multiple Hydrogen Bonds with Fluoride on Catalysis: Insight from NMR Spectroscopy

机译:多种氢键与氟化物对催化的影响:NMR光谱的洞察

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摘要

Hydrogen-bonding interactions have been explored in catalysis, enabling complex chemical reactions. Recently, enantioselective nucleophilic fluorination with metal alkali fluoride has been accomplished with BINAM-derived bisurea catalysts, presenting up to four NH hydrogen-bond donors (HBDs) for fluoride. These catalysts bring insoluble CsF and KF into solution, control fluoride nucleophilicity, and provide a chiral microenviron-ment for enantioselective fluoride delivery to the electrophile. These attributes encouraged a ~1H/~(19)F NMR study to gain information on hydrogen-bonding networks with fluoride in solution, as well as how these arrangements impact the efficiency of catalytic nucleophilic fluorination. Herein, NMR experiments enabled the determination of the number and magnitude of HB contacts to fluoride for thirteen bisurea catalysts. These data supplemented by diagnostic coupling constants ~(1h)J_(NH…F)- giye insight into how multiple H bonds to fluoride influence reaction performance. In dichloromethane (DCM-d_2), nonalkylated BINAM-derived bisurea catalyst engages two of its four NH groups in hydrogen bonding with fluoride, an arrangement that allows effective phase-transfer capability but low control over enantioselectivity for fluoride delivery. The more efficient N-alkylated BINAM-derived bisurea catalysts undergo urea isomerization upon fluoride binding and form dynamically rigid trifurcated hydrogen-bonded fluoride complexes that are structurally similar to their conformation in the solid state. Insight into how the countercation influences fluoride complexation is provided based on NMR data characterizing the species formed in DCM-d_2 when reacting a bisurea catalyst with tetra-n-butylammonium fluoride (TBAF) or CsF. Structure-activity analysis reveals that the three hydrogen-bond contacts with fluoride are not equal in terms of their contribution to catalyst efficacy, suggesting that tuning individual electronic environment is a viable approach to control phase-transfer ability and enantioselectivity.
机译:在催化中探讨了氢键相互作用,使复杂的化学反应能够。最近,用Binam衍生的双脲催化剂完成了用金属碱氟化物的映选择性亲核氟化,其含有最多四种NH氢键供体(HBDS)的氟化物。这些催化剂将不溶的CSF和KF溶液中的溶液,对照氟化物亲核性,并为亲本氟化物输送到亲电子氟化物。这些属性促进了〜1H /〜(19)F NMR研究,以获得溶液中氟化物的氢键网络的信息,以及这些布置如何影响催化亲核氟化的效率。在此,NMR实验使能HB触点的数量和大小的氟化物对13个Bisurea催化剂的测定。这些数据补充了诊断耦合常数〜(1H)J_(NH ... F) - GIYE深入了解多个H键对氟化物的影响会影响反应性能。在二氯甲烷(DCM-D_2)中,非烷基化的Binam衍生的双脲催化剂与氟化物的氢键合接合其四个NH基团中的两个,这是允许有效相转移能力但对氟化物递送的对映射性进行对映射性的对致映射性的布置的布置。更高效的N-烷基化伯胺衍生的Bisurea催化剂在氟化物结合时经历尿素异构化,形成动态刚性透过的氢键络合物,其在结构上与其在固态中的构象相似。基于NMR数据,提供了对如何影响氟化物络合的氟化物络合,其表征在与四正丁基铵(TBAF)或CSF反应时在DCM-D_2中形成的物种。结构 - 活性分析表明,在其对催化剂功效的贡献方面,三种与氟化物的氢键接触不等,这表明调整各个电子环境是控制相转移能力和对映射性的可行方法。

著录项

  • 来源
    《Journal of the American Chemical Society》 |2020年第46期|19731-19744|共14页
  • 作者单位

    Chemistry Research Laboratory University of Oxford Oxford 0X1 3TA United Kingdom;

    Chemistry Research Laboratory University of Oxford Oxford 0X1 3TA United Kingdom;

    Chemistry Research Laboratory University of Oxford Oxford 0X1 3TA United Kingdom;

    Chemistry Research Laboratory University of Oxford Oxford 0X1 3TA United Kingdom;

    Chemistry Research Laboratory University of Oxford Oxford 0X1 3TA United Kingdom;

    Veronique Gouverneur - Chemistry Research Laboratory University of Oxford Oxford 0X1 3TA United Kingdom;

  • 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);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
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  • 入库时间 2022-08-18 22:16:54

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