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April 3, 2026Chemical and Pharmaceutical Bulletin0 citationsOpen Access

Development of Catalyst Systems Enabling sp3 C–H Functionalization Reactions

HMHarunobu Mitsunuma

Key Points

  • The goal is to develop catalyst systems that allow effective sp3 C–H bond functionalization for organic synthesis.
  • Developed a synergistic catalyst system combining multiple catalyst types.
  • Used a hydrogen atom transfer (HAT) catalyst for mild C–H bond cleavage.
  • Integrated a metal catalyst for diverse transformations and a photoredox catalyst for electron transfer.
  • Achieved sp3 C–H functionalization under mild conditions with high compatibility for functional groups.
  • Identified effective catalyst systems for new catalytic nucleophilic addition reactions.

Abstract

The functionalization of the ubiquitous carbon–hydrogen (C–H) bonds in organic molecules via transition-metal catalysis represents an ideal molecular transformation for the efficient synthesis of pharmaceutical and agrochemical compounds, fulfilling the principles of both atom economy and step economy. However, sp3 C–H bonds in readily available hydrocarbon feedstocks are inert, and conventional single-catalyst activation strategies have fundamental limitations, including the need for high temperatures and the introduction of directing groups. To address these challenges, we developed a reaction design based on a synergistic catalyst system that integrates multiple catalysts with orthogonal functions, enabling a previously unprecedented and broadly applicable strategy for sp3 C–H bond functionalization via the catalytic generation of organometallic species. Specifically, a ternary catalyst system comprising a hydrogen atom transfer (HAT) catalyst that can promote C–H bond cleavage under mild conditions, a metal catalyst that enables diverse and stereoselective transformations, and a photoredox catalyst that mediates the electron-transfer process was established. This system enabled sp3 C–H bond functionalization under mild conditions with high functional-group compatibility. Through the identification of uniquely effective catalyst systems, this strategy enables novel catalytic nucleophilic addition reactions and acceptorless dehydrogenation directly from simple hydrocarbon substrates.

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Cite This Study

Harunobu Mitsunuma (2026) studied this question.

synapsesocial.com/papers/69cf5f225a333a821460e01fhttps://doi.org/10.1248/cpb.c25-00822
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