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April 6, 2026Journal of the American Chemical Society2 citations

Which Radical Abstracts Hydrogen Atom? Alkylperoxy versus Alkoxy in Cu-Catalyzed Benzylic C–H Oxidation

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YZYujia ZhouZhejiang UniversityYWYongtao WangZhejiang UniversityXWXinyu WangZhejiang University

Key Points

  • This research aims to identify the active radical species involved in copper-catalyzed benzylic C(sp3)–H oxidation.
  • Utilized an external-circulation online multispectroscopic system (ECOMS) to track radicals
  • Analyzed the time evolution of cumylperoxyl radical throughout the reaction
  • Conducted theoretical studies to investigate radical dominance
  • Examined the effect of counteranion basicity on Cu(II)–OOR formation
  • Cumylperoxyl radical identified as the main hydrogen-atom transfer agent
  • Alkylperoxy radicals found to dominate over alkoxy radicals in the reaction
  • Higher counteranion basicity increases Cu(II)–OOR formation and cumylperoxyl concentrations
  • Faster oxidation rates observed with increased counteranion basicity

Abstract

Selective alkane oxidation remains a central objective in industrial chemistry, with hydrogen-atom transfer (HAT) widely recognized as the key elementary step. In copper-catalyzed C(sp3)–H oxygenation using hydroperoxides, however, multiple oxygen-centered radicals could be generated, bearing uncertainty of the species responsible for HAT. Here, we employ an external-circulation online multispectroscopic system (ECOMS) to elucidate the radical mechanism of benzylic C(sp3)–H oxidation using cumene hydroperoxide as the oxidant. This operando approach enables direct and quantitative tracking of the time evolution of the cumylperoxyl radical (CumylOO•) throughout the reaction, unambiguously identifying it as the operative HAT agent. Further theoretical studies clarify the mechanistic origin of the dominance of alkylperoxy over alkoxy radical. Moreover, increasing counteranion basicity promotes Cu(II)–OOR formation, resulting in elevated CumylOO• steady-state concentrations and faster oxidation rates.

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Cite This Study

Zhou et al. (2026) studied this question.

synapsesocial.com/papers/69d34e579c07852e0af97dbdhttps://doi.org/10.1021/jacs.6c01241
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