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通过成对电解驱动的自由基-自由基交叉偶联实现苄基碳(sp/sp/sp)的直接羟基化反应

Direct Hydroxylarylation of Benzylic Carbons (sp/sp/sp) via Radical-Radical Cross-Coupling Powered by Paired Electrolysis.

作者信息

Wang Xiao-Wen, Li Rui-Xue, Deng Yang, Fu Ming-Qiu-Hao, Zhao Ya-Nan, Guan Zhi, He Yan-Hong

机构信息

Key Laboratory of Applied Chemistry of Chongqing Municipality, School of Chemistry and Chemical Engineering, Southwest University, Chongqing 400715, China.

Analytical and Testing Center, Southwest University, Chongqing 400715, China.

出版信息

J Org Chem. 2023 Jan 6;88(1):329-340. doi: 10.1021/acs.joc.2c02363. Epub 2022 Dec 23.

Abstract

Diaryl alcohol moieties are widespread in pharmaceuticals. Existing methods for the synthesis of diaryl alcohols require the use of pre-functionalized benzylic alcohols, aromatic aldehydes, or ketones as starting materials. Herein, the first convergent paired electrochemical approach to the direct hydroxylarylation of unactivated benzylic carbons (sp/sp/sp) is proposed. This protocol features direct functionalization of unactivated benzylic C(sp)-H bonds and benzylic sp/sp-carbons, mild conditions (open air, room temperature), an environmentally friendly procedure (without any external catalyst/mediator/additive), and direct access to sterically hindered alcohols from inexpensive and readily available alkyl/alkenyl/alkynylbenzenes. Mechanistic studies, including divided-cell experiments, isotope labeling, radical trapping, electron paramagnetic resonance, reaction kinetics, and cyclic voltammetry, strongly support the proposed radical-radical cross-coupling between transient ketyl radicals and persistent radical anions. Gram-scale synthesis and diversification of drug derivatives have visualized the tremendous potential of this protocol for practical applications.

摘要

二芳基醇部分在药物中广泛存在。现有的二芳基醇合成方法需要使用预官能化的苄醇、芳族醛或酮作为起始原料。在此,提出了第一种用于未活化苄基碳(sp³/sp²/sp)直接羟基化的收敛成对电化学方法。该方案的特点是未活化苄基C(sp³)-H键和苄基sp²/sp³-碳的直接官能化、温和的条件(露天、室温)、环保的过程(无需任何外部催化剂/介质/添加剂),并且能够从廉价且容易获得的烷基/烯基/炔基苯直接获得位阻醇。机理研究,包括分隔电池实验、同位素标记、自由基捕获、电子顺磁共振、反应动力学和循环伏安法,有力地支持了瞬态酮基自由基与持久性自由基阴离子之间提出的自由基-自由基交叉偶联。克级合成和药物衍生物的多样化展示了该方案在实际应用中的巨大潜力。

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