4.8 Article

Enzyme-like Supramolecular Iridium Catalysis Enabling C-H Bond Borylation of Pyridines with meta-Selectivity

期刊

ANGEWANDTE CHEMIE-INTERNATIONAL EDITION
卷 60, 期 33, 页码 18006-18013

出版社

WILEY-V C H VERLAG GMBH
DOI: 10.1002/anie.202101997

关键词

homogeneous catalysis; iridium; porphyrinoids; pyridine; supramolecular chemistry

资金

  1. People Programme (Marie Curie Actions) of the European Union's Seventh Framework Programme (FP7/2007-2013) under REA through the PRESTIGE program [PCOFUND-GA-2013-609102]
  2. ANR-JCJC
  3. Fondation Rennes 1
  4. CNRS
  5. Region Bretagne (Strategie d'Attractivite Durable and Boost'Europe)
  6. Universite de Rennes 1
  7. Rennes Metropole

向作者/读者索取更多资源

Utilizing secondary interactions between substrates and catalysts is a promising approach to discover selective transition metal catalysts for atom-economy C-H bond functionalization. The most powerful catalysts are often discovered through trial-and-error screening, as small stereo-electronic modifications within the substrate and catalyst can lead to vastly different reactivities.
The use of secondary interactions between substrates and catalysts is a promising strategy to discover selective transition metal catalysts for atom-economy C-H bond functionalization. The most powerful catalysts are found via trial-and-error screening due to the low association constants between the substrate and the catalyst in which small stereo-electronic modifications within them can lead to very different reactivities. To circumvent these limitations and to increase the level of reactivity prediction in these important reactions, we report herein a supramolecular catalyst harnessing ZnN interactions that binds to pyridine-like substrates as tight as it can be found in some enzymes. The distance and spatial geometry between the active site and the substrate binding site is ideal to target unprecedented meta-selective iridium-catalyzed C-H bond borylations with enzymatic Michaelis-Menten kinetics, besides unique substrate selectivity and dormant reactivity patterns.

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