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March 18, 2026Angewandte Chemie International Edition1 citationsOpen Access

Rh‐Catalyzed Chemodivergent Parallel Kinetic Resolution and Desymmetrization of Enynes and Dienynes with Acrylamides

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SHShintaro HamadaTokyo Institute of TechnologyJJJulong JiangYSYu SatoTokyo Institute of Technology

Key Points

  • The research aims to explore a new catalytic method for synthesizing diverse 3D molecules through chemodivergent pathways.
  • Rh-catalyzed parallel kinetic resolution of racemic 1,6-enynes
  • Utilization of α-fluoroacrylamides and mixed acrylamides
  • Involvement of [2+2+2] cycloaddition and C-H alkylation processes
  • Computational studies on stereochemical influences and transition states
  • Successful formation of structurally distinct products from racemic enynes with high selectivity
  • Achievement of enantioselective desymmetrization of symmetric dienynes
  • Revealed steric repulsion effects influencing activation states and bond dissociation energy

Abstract

Catalytic enantioselective synthesis of structurally diverse 3D molecules remains a central challenge in organic chemistry. Intermolecular chemodivergent parallel kinetic resolution (PKR) of racemic substrates through C─C bond formation using a single catalyst to yield distinct products is rare. Here, we report Rh-catalyzed chemodivergent PKR of racemic 1,6-enynes with α-fluoroacrylamides or mixtures of different acrylamides, proceeding via 2+2+2 cycloaddition and C-H alkylation to afford structurally and stereochemically distinct products with high selectivity under mild conditions. Additionally, substituent-dependent enantioselective desymmetrization of symmetric dienynes was achieved. Computational studies revealed that, depending on the stereochemistry of the 1,6-enyne, steric repulsion between the ligand and the enyne favors a compact C-H activation transition state, whereas its absence favors a C═C insertion transition state involving a smaller bond dissociation energy. These findings establish a versatile catalytic platform for the selective generation of 3D molecular complexity, advancing diversity-oriented synthesis from racemic or symmetric precursors.

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Cite This Study

Hamada et al. (2026) studied this question.

synapsesocial.com/papers/69ba42ee4e9516ffd37a3a61https://doi.org/10.1002/anie.9965825
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