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April 14, 2026Journal of the American Chemical Society0 citationsOpen Access

Rhodium-Catalyzed Desymmetric Addition of Boronic Acids to Malononitriles

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MZMinghao ZhangQZQiang ZhangJCJunjie Cao

Key Points

  • The study aims to improve enantiocontrol in reactions involving malononitriles using a rhodium-catalyzed method.
  • Developed a custom phosphoramidite ligand for rhodium catalysis.
  • Performed desymmetric addition of carbon nucleophiles to malononitriles.
  • Explored the spatial effects of ligand structure on substrate orientation.
  • Achieved good enantiopurity in β-ketonitriles.
  • Demonstrated versatile reactivity from nitrile and ketone derivatives.
  • Proposed a mechanism involving restricted bond rotation due to ligand structure.

Abstract

Malononitrile is a privileged chemical feedstock for building complex nitrogen-containing molecules of interest. However, achieving high enantiocontrol in transformations of its derivatives is often challenging, as the spatial arrangement of the two linear nitriles impedes the chelative assistance commonly exploited in related multifunctionalized reactants. Here, we demonstrate a customized phosphoramidite ligand for a rhodium-catalyzed desymmetric addition of carbon nucleophiles to malononitriles. The chiral pocket, enclosed by a vaulted, chlorinated binaphthol skeleton and an iminostilbene motif, is proposed to restrict the C(ipso)-C(α) bond rotation of complexed nitrile and thus enforces precise substrate orientation. Consequently, β-ketonitriles bearing a quaternary stereocenter are obtained in good enantiopurity with versatile reactivity arising from the remaining nitrile, the newly generated ketone, and diverse substituents retained from the malononitrile reactant.

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Cite This Study

Zhang et al. (2026) studied this question.

synapsesocial.com/papers/69ddda0de195c95cdefd77e1https://doi.org/10.1021/jacs.5c23045
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