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January 27, 2026Angewandte Chemie International Edition3 citations

Where Enantioselection is Set: A Mechanistic Framework for Asymmetric Hydrogen‐Atom Transfer

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ZXZhongyun XuWYW. C. YanYZYong‐Qiang Zhang

Key Points

  • The central aim is to understand the mechanisms enabling high enantioselectivity in asymmetric hydrogen-atom transfer (HAT).
  • Organized asymmetric HAT into five regimes: donation-controlled, radical-centered, abstraction-controlled, cooperative bimetallic, and enzyme-mediated catalysis.
  • Illustrated how different catalysts contribute to enantioselection through specific geometric and kinetic controls.
  • Used representative cases to demonstrate diverse strategies for achieving selective hydrogen transfer.
  • Achieved high enantioselectivity via engineered catalysts at the H-transfer step, improving radical reaction outcomes.
  • Documented how precise geometrical definitions and organized environments enhance catalytic efficiency.
  • Identified emerging opportunities for expanding the field of asymmetric radical chemistry.

Abstract

Abstract Hydrogen‐atom transfer (HAT) lies at the heart of radical chemistry, yet asymmetric HAT has been difficult because the high reactivity of radicals often forces H‐transfer to proceed through early, weakly organized transition states, yielding small ΔΔG ‡ and allowing rapid racemic background pathways to compete. Recent advances across small‐molecule, metalloradical, cooperative, peptide, and enzymatic catalysis show that high enantioselectivity is attainable when the catalyst is engineered to exert stereocontrol precisely at the H‐transfer step that sets configuration. In this minireview, we organize asymmetric HAT into five regimes—donation‐controlled termination, radical‐centered control, abstraction‐controlled HAT, cooperative bimetallic catalysis, and enzyme‐mediated HAT—each specified by where chiral information is introduced during H‐transfer. Through representative cases, we illustrate how catalysts achieve enantioselection by defining radical geometry, guiding H‐delivery, enforcing selective hydrogen abstraction, or confining donor–acceptor pairs within organized chiral environments. This mechanistic framework provides a unified lens spanning synthetic and biocatalytic systems, clarifies the distinct stereochemical logics in each regime, and highlights emerging opportunities for expanding asymmetric radical chemistry through precisely orchestrated H‐atom transfer.

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Cite This Study

Xu et al. (2026) studied this question.

synapsesocial.com/papers/69785538ccb046adae51777fhttps://doi.org/10.1002/anie.202526135
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