Continuous Flow Decarboxylative Monofluoroalkylation Enabled by Photoredox Catalysis.

IF 8.7 Q1 CHEMISTRY, MULTIDISCIPLINARY JACS Au Pub Date : 2025-02-02 eCollection Date: 2025-02-24 DOI:10.1021/jacsau.4c00902
Francesco Pasca, Yuri Gelato, Michael Andresini, Defne Serbetci, Philipp Natho, Giuseppe Romanazzi, Leonardo Degennaro, Marco Colella, Renzo Luisi
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Abstract

Herein, we report a scalable and mild strategy for the monofluoroalkylation of a wide array of Giese acceptors via visible-light-mediated photoredox catalysis in continuous flow. The use of flow technology significantly enhances productivity and scalability, whereas mildness of conditions and functional group tolerance are ensured by leveraging 4CzIPN, a transition-metal-free organic photocatalyst. Structurally diverse secondary and tertiary monofluoroalkyl radicals can thus be accessed from readily available α-monofluorocarboxylic acids. Given the mild reaction conditions, this protocol is also amenable to the late-stage functionalization of biologically relevant molecules such as menthol, amantadine, bepotastine, and estrone derivatives, rendering it suitable for application to drug discovery programs, for which the introduction of fluorinated fragments is highly sought after. This method was also extended to enable a reductive multicomponent radical-polar crossover transformation to rapidly increase the complexity of the assembled fluorinated architectures in a single synthetic operation.

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光氧化还原催化实现连续流脱羧单氟烷基化。
在此,我们报告了一种可扩展和温和的策略,通过可见光介导的连续流光氧化还原催化广泛的Giese受体的单氟烷基化。流动技术的使用显著提高了生产效率和可扩展性,同时利用无过渡金属有机光催化剂4CzIPN确保了条件的温和性和官能团的耐受性。因此,可以从现成的α-单氟羧酸中获得结构多样的二级和三级单氟烷基自由基。考虑到温和的反应条件,该方案也适用于生物相关分子的后期功能化,如薄荷醇、金刚烷胺、bepotastine和雌酮衍生物,使其适合应用于药物发现项目,其中氟化片段的引入备受追捧。该方法还得到了扩展,以实现简化的多组分自由基-极性交叉转换,从而在一次合成操作中迅速增加组装的氟化结构的复杂性。
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CiteScore
9.10
自引率
0.00%
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0
审稿时长
10 weeks
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