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中文摘要
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项目摘要。 芳基氟在一系列重要化合物中普遍存在。25%的农用化学品和 >20%的药物含有氟,通常以芳基氟化物的形式存在。此外,18F是最受欢迎的 正电子发射断层扫描(PET)中的放射性同位素,一种用于诊断和治疗的活体成像技术 治疗阿尔茨海默氏症和帕金森氏症等疾病。尽管芳基氟化物在 在这些领域,目前很少有稳健的和官能团耐受的方法来合成它们。 因此,开发更有效的方法将氟引入有机分子中是当务之急。一 前景看好的方法是过渡金属催化从易得的芳基卤化物合成芳基氟化物。 然而,关于这种转变的系统报道很少。之前的两个基于铜的系统使用简单的 铜盐,并构成需要解决的重大缺点,例如对高 温度、过多昂贵的氟化物源(AGF)、超等当量铜或特定的限制 导演团。因此,开发克服这些限制的系统是极其重要的 该领域尚未解决的问题。为了改进这些系统,我们的目标是应对关键挑战 铜的固有特性:(1)大多数CuIF络合物对歧化反应的不稳定性,以形成无活性的Cu0和CuF2 以及(Ii)氧化加成步骤的难度。为了克服这些问题,我们将从简单的铜盐 到N-杂环卡宾(NHCS)、环烷基氨基卡宾支撑的定义明确的铜配合物 (CAAC),或相关配体。我们假设这些配体将稳定CuI中间体,以及有利于 氧化加成,导致更有效的催化剂。具体地说,我们的目标是使用卡宾支撑的铜 配合物:(1)研究配体性质对芳基卤化物化学计量氟化的影响,(2)开发 一系列药物相关芳基卤化物支架的催化氟化反应(3)18F标记化合物的合成 用于PET成像的示踪剂分子。这些目标的实现将导致改善 芳基卤化物的氟化,可用于合成药物、农用化学品和PET示踪剂。 已取得初步结果,支持各项拟议目标的可行性。
英文摘要
Project Summary. The aryl fluoride motif is prevalent in a range of important compounds. >25% of agrochemicals and >20% of pharmaceuticals contain fluorine, often in the form of aryl fluoride. Additionally, 18F is the favored radioisotope in Positron Emission Tomography (PET), an in-vivo imaging technique used in the diagnosis and treatment of diseases such as Alzheimer's and Parkinson's. Despite the widespread use of aryl fluorides in these areas, there are currently very few robust and functional group tolerant methods for their synthesis. Developing more efficient methods to introduce fluorine into organic molecules is therefore a priority. One promising method is the transition metal catalyzed synthesis of aryl fluorides from readily available aryl halides. However, there are few reported systems for this transformation. The two prior Cu-based systems use simple Cu salts and pose significant drawbacks that need to be addressed, such as the requirement for high temperatures, an excess of expensive fluoride source (AgF), supersoichiometric Cu, or limitation to specific directing groups. Developing systems that overcome these limitations is therefore an extremely important unsolved problem in the field. In order to improve on these systems, we aim to address key challenges inherent to Cu: (i) the instability of most CuIF complexes to disproportionation to form inactive Cu0 and CuF2 and (ii) the difficulty of the oxidative addition step. To overcome these issues we will move from simple Cu salts to well-defined copper complexes supported by N-heterocyclic carbenes (NHCs), cyclic alkyl amino carbene (CAACs), or related ligands. We hypothesize that these ligands will stabilize CuI intermediates, as well as favor oxidative addition, leading to more efficient catalysts. Specifically, we aim to use carbene-supported Cu complexes to: (1) study the effects of ligand properties on stoichiometric fluorination of aryl halides, (2) develop catalytic fluorination of a range of pharmaceutically relevant aryl halide scaffolds (3) synthesize 18F labeled tracer molecules for use in PET imaging. Completion of these aims will result in improved systems for the fluorination of aryl halides that can be applied to synthesis of pharmaceuticals, agrochemicals and PET tracers. Preliminary results have been obtained that support the feasibility of each proposed aim.
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Copper Catalyzed Fluorination of Aryl Halides
  • 批准号:
    10115518
  • 项目类别:
  • 资助金额:
    $6.64万
  • 财政年份:
    2020
  • 负责人:
    Liam Shin Sharninghausen
  • 依托单位:
海外基金