Cobalt/Lewis Acid Catalysis for Hydrocarbofunctionalization of Alkynes via Cooperative C-H Activation.

J Am Chem Soc

Division of Chemistry and Biological Chemistry, School of Physical and Mathematical Sciences, Nanyang Technological University, Singapore 637371, Singapore.

Published: July 2020

AI Article Synopsis

  • A new catalytic system using a cobalt-diphosphine complex paired with a Lewis acid like AlMe has been developed to facilitate the hydrocarbofunctionalization of alkynes with Lewis basic and electron-deficient compounds, enabling selective activation of C-H bonds.
  • This system is advantageous over existing nickel-based equivalents due to its use of cheaper, stable precatalysts and its ability to achieve specific C-H activation at different sites on pyridine and imidazo[1,2-]pyridine compounds.
  • Mechanistic studies indicate that the reaction's slowest step involves breaking a specific C-H bond through a ligand-to-ligand hydrogen transfer process, creating a cobalt complex that leads to the desired product.

Article Abstract

A catalytic system comprising a cobalt-diphosphine complex and a Lewis acid (LA) such as AlMe has been found to promote hydrocarbofunctionalization reactions of alkynes with Lewis basic and electron-deficient substrates such as formamides, pyridones, pyridines and related azines, imidazo[1,2-]pyridines, and azole derivatives through site-selective C-H activation. Compared with known Ni/LA catalytic systems for analogous transformations, the present catalytic systems not only feature convenient setup using inexpensive and bench-stable precatalyst and ligand such as Co(acac) and 1,3-bis(diphenylphosphino)propane (dppp) but also display distinct site-selectivity toward C-H activation of pyridone and pyridine derivatives. In particular, a completely C4-selective alkenylation of pyridine has been achieved for the first time. Meanwhile, the present catalytic system proved to promote exclusively C5-selective alkenylation of imidazo[1,2-]pyridine derivatives. Mechanistic studies including DFT calculations on the Co/Al-catalyzed addition of formamide to alkyne have suggested that the reaction involves cleavage of the carbamoyl C-H bond as the rate-limiting step, which proceeds through a ligand-to-ligand hydrogen transfer (LLHT) mechanism leading to an alkenyl(carbamoyl)cobalt intermediate.

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Source
http://dx.doi.org/10.1021/jacs.0c06412DOI Listing

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