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Development and Mechanistic Studies of Palladium-Catalyzed Ligand-Directed C-H Bond Functionalization Reactions.

机译:钯催化的配体导向C-H键功能化反应的开发和机理研究。

摘要

C−H bonds are abundant in organic molecules and have great potential to be utilized as starting materials for the functionalization of many pharmaceuticals and natural products. With the use of Pd-catalysts these typically inert bonds can be activated and transformed into diverse functional groups and more complex products. Substrates with coordinating ligands can direct activation/functionalization to a specific C−H bond and help to overcome issues of site-selectivity. However, many functionalization reactions require high temperatures and forcing reaction conditions. Herein we report Pd-catalyzed C–H functionalization reactions with milder conditions as well as a mechanistic study to improve reaction conditions and increase understanding. Chapter 1 introduces these ideas with subsequent chapters devoted to the study of specific methodologies.Chapter 2 details the palladium-catalyzed C−H fluorination of 8-methylquinoline derivatives with nucleophilic fluoride. This transformation involves the use of AgF as the fluoride source in combination with a hypervalent iodine oxidant. The scope and mechanism of the reaction are discussed. In an effort to explore conditions relevant for PET imaging, short reaction times were investigated for this transformation. Chapter 3 describes the development of a room-temperature ligand-directed C−H arylation reaction using aryldiazonium salts. This was achieved by the successful merger of palladium-catalyzed C−H functionalization and visible-light photoredox catalysis. The unusually mild conditions utilized in this transformation (room temperature, CH3OH solvent) are proposed to be due to the kinetically reactive aryl radical oxidants formed under the reaction conditions. This method is general for a variety of directing groups and tolerates many common functional groups.Chapter 4 explores the mechanism of a room temperature palladium-/iridium-catalyzed C−H arylation reaction using diaryliodonium salts as the aryl source. This use of visible-light photoredox catalysis in combination with palladium catalyzed C−H functionalization is interesting mechanistically, and could potentially lead to other functionalization reactivity through similar methods. Stern-Volmer quenching studies along with kinetic studies are discussed in detail.
机译:CH键在有机分子中含量很高,具有很大的潜力,可以用作许多药物和天然产物功能化的起始原料。通过使用Pd催化剂,这些典型的惰性键可以被激活并转化为各种官能团和更复杂的产物。具有配位体配体的底物可以将活化/功能化导向特定的CH键,并有助于克服位点选择性的问题。然而,许多官能化反应需要高温和强迫反应条件。在本文中,我们报告了在较温和条件下Pd催化的C–H功能化反应,以及为改善反应条件和增进了解而进行的机理研究。第一章介绍了这些思想,随后的章节专门研究特定的方法。第二章详细介绍了钯催化的8-甲基喹啉衍生物与亲核氟化物的CH-F氟化反应。该转化涉及与高价碘氧化剂结合使用AgF作为氟化物源。讨论了反应的范围和机理。为了探索与PET成像相关的条件,研究了这种转化的较短反应时间。第3章描述了使用芳基重氮盐在室温下进行配体导向的CH芳基化反应的进展。这是通过钯催化的CH官能团与可见光光氧化还原催化的成功结合而实现的。提出在该转化中使用的异常温和的条件(室温,CH 3 OH溶剂)是由于在反应条件下形成的具有动力学活性的芳基自由基氧化剂。该方法适用于各种导向基团,并能耐受许多常见的官能团。第四章探讨了以二芳基碘鎓盐为芳基源的室温钯/铱催化的CH芳基化反应的机理。可见光光氧化还原催化与钯催化的CH官能化结合使用在机械上很有趣,并且可能通过相似的方法导致其他官能化反应。 Stern-Volmer淬灭研究与动力学研究一起进行了详细讨论。

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    McMurtrey Kate Butler;

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  • 年度 2014
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