Department of Chemistry, Princeton University, Princeton, New Jersey 08544, United States.
Chemistry Division, Brookhaven National Laboratory, Upton, New York 11973, United States.
J Am Chem Soc. 2022 Nov 30;144(47):21783-21790. doi: 10.1021/jacs.2c10296. Epub 2022 Nov 17.
While heteroatom-centered radicals are understood to be highly electrophilic, their ability to serve as transient electron-withdrawing groups and facilitate polar reactions at distal sites has not been extensively developed. Here, we report a new strategy for the electronic activation of halophenols, wherein generation of a phenoxyl radical via formal homolysis of the aryl O-H bond enables direct nucleophilic aromatic substitution of the halide with carboxylate nucleophiles under mild conditions. Pulse radiolysis and transient absorption studies reveal that the neutral oxygen radical (O) is indeed an extraordinarily strong electron-withdrawing group [σ(O) = 2.79 vs σ(NO) = 1.27]. Additional mechanistic and computational studies indicate that the key phenoxyl intermediate serves as an open-shell electron-withdrawing group in these reactions, lowering the barrier for nucleophilic substitution by more than 20 kcal/mol relative to the closed-shell phenol form of the substrate. By using radicals as transient activating groups, this homolysis-enabled electronic activation strategy provides a powerful platform to expand the scope of nucleophile-electrophile couplings and enable previously challenging transformations.
虽然杂原子中心自由基被认为是高亲电性的,但它们作为瞬时电子受主基团并促进远程位置的极性反应的能力尚未得到广泛开发。在这里,我们报告了一种新的卤代苯酚的电子活化策略,其中通过芳基 O-H 键的形式均裂生成苯氧自由基,可在温和条件下直接与羧酸盐亲核试剂进行卤化物的亲核芳香取代反应。脉冲辐射和瞬态吸收研究表明,中性氧自由基(O)确实是一个极强的吸电子基团 [σ(O) = 2.79 vs σ(NO) = 1.27]。更多的机理和计算研究表明,关键的苯氧自由基中间体在这些反应中充当开壳电子吸电子基团,使亲核取代的势垒比底物的闭壳酚形式降低超过 20 kcal/mol。通过将自由基用作瞬时活化基团,这种均裂引发的电子活化策略为扩展亲核-亲电偶联的范围并实现以前具有挑战性的转化提供了一个强大的平台。