4.8 Article

Chiral Bidentate Boryl Ligand-Enabled Iridium-Catalyzed Enantioselective Dual C-H Borylation of Ferrocenes: Reaction Development and Mechanistic Insights

Journal

ACS CATALYSIS
Volume 12, Issue 3, Pages 1830-1840

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acscatal.1c05299

Keywords

C-H activation; organoboron; chiral ferrocenes; synthetic methods; asymmetric catalysis

Funding

  1. National Natural Science Foundation of China [91956116, 21973113]
  2. Guangdong National Science Funds for Distinguished Young Scholars [2015A030306027]
  3. Lanzhou Institute of Chemical Physics
  4. Hangzhou Normal University

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Ferrocenes with planar chirality are important for various chiral ligands and organocatalysts. This study reports an iridium-catalyzed enantioselective dual C-H borylation of ferrocenes using an amide directing group. The reaction showed high enantioselectivity and tolerance towards different functional groups.
Ferrocenes with planar chirality are an important class of privileged scaffolds for diverse chiral ligands and organocatalysts. The development of efficient catalytic asymmetric methods under mild reaction conditions is a long-sought goal in this field. Though many transition-metal-catalyzed asymmetric C-H activation methods have been recorded during the last decade, most of them are related to C-C bond-forming reactions. Owing to the useful attribute of the C-B bond, we herein report an amide-directed iridium-catalyzed enantioselective dual C-H borylation of ferrocenes. The key to the success of this transformation relies on a chiral bidentate boryl ligand and a judicious choice of a directing group. The current reaction could tolerate a vast array of functionalities, affording a variety of chiral borylated ferrocenes with good to excellent enantioselectivities (35 examples, up to 98% enantiomeric excess). We also demonstrated the synthetic utility by preparative-scale reaction and transformations of a borylated product. Finally, on the basis of the observed experimental data, we performed DFT calculations to understand its reaction pathway and chiral induction, which reveals that methyl C(sp(3))-H borylation is crucial to conferring high enantioselectivity through an amplified steric effect caused by an interacted B-O fragment in the transition state.

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