Site-selective benzylic C–H hydroxylation in electron-deficient azaheterocycles†

IF 2.9 3区 化学 Q1 CHEMISTRY, ORGANIC Organic & Biomolecular Chemistry Pub Date : 2024-06-19 DOI:10.1039/d4ob00268g
Milanpreet Kaur , Julian C. Cooper , Jeffrey F. Van Humbeck
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Abstract

Benzylic C–H bonds can be converted into numerous functional groups, often by mechanisms that involve hydrogen atom transfer as the key bond breaking step. The abstracting species is most often an electrophilic radical, which makes these reactions best suited to electron-rich C–H bonds to achieve appropriate polarity matching. Thus, electron deficient systems such as pyridine and pyrimidine are relatively unreactive, and therefore underrepresented in substrate scopes. In this report, we describe a new method for heterobenzylic hydroxylation—essentially an unknown reaction in the case of pyrimidines—that makes use of an iodine(iii) reagent to afford very high selectivity towards electron-deficient azaheterocycles in substrates with more than one reactive position and prevents over-oxidation to carbonyl products. The identification of key reaction byproducts supports a mechanism that involves radical coupling in the bond forming step.

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缺电子杂杂环中苄基 C-H 羟基的位点选择性。
苄基 C-H 键可转化为多种官能团,其机制通常涉及氢原子转移这一关键的断键步骤。抽离物种通常是亲电自由基,这使得这些反应最适合于电子丰富的 C-H 键,以实现适当的极性匹配。因此,像吡啶和嘧啶这样的缺电子系统相对来说没有反应性,因此在底物范围中的代表性不足。在本报告中,我们介绍了一种杂苄基羟基化的新方法--这在嘧啶类化合物中基本上是一种未知反应--该方法利用碘(III)试剂对具有一个以上反应位置的底物中的缺电子杂杂环具有极高的选择性,并能防止过度氧化生成羰基产物。关键反应副产物的鉴定支持了在成键步骤中涉及自由基偶联的机理。
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来源期刊
Organic & Biomolecular Chemistry
Organic & Biomolecular Chemistry 化学-有机化学
CiteScore
5.50
自引率
9.40%
发文量
1056
审稿时长
1.3 months
期刊介绍: The international home of synthetic, physical and biomolecular organic chemistry.
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