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Axial Ligand Enables Synthesis of Allenylsilane through Dirhodium(II) Catalysis. | LitMetric

Axial Ligand Enables Synthesis of Allenylsilane through Dirhodium(II) Catalysis.

Angew Chem Int Ed Engl

Key Laboratory of Functional Molecular Engineering of Guangdong Province, School of Chemistry and Chemical Engineering, South China University of Technology, Guangzhou, 510640, P. R. China.

Published: September 2024

AI Article Synopsis

  • A dirhodium(II)-catalyzed reaction using tertiary amines can efficiently produce allenylsilanes from propargyl esters and hydrosilanes.
  • This method exemplifies an S2'-type silylation process and showcases a novel use of dirhodium(II) complexes in manipulating carbon-carbon triple bonds.
  • The reaction's success heavily depends on the presence of the amine ligand, which dramatically shifts the reaction's activity from negligible (OFF) to effective (ON) when added in small amounts.

Article Abstract

Described herein is a dirhodium(II)-catalyzed silylation of propargyl esters with hydrosilanes, using tertiary amines as axial ligands. By adopting this strategy, a range of versatile and useful allenylsilanes can be achieved with good yields. This reaction not only represents a S2'-type silylation of the propargyl derivatives bearing a terminal alkyne moiety to synthesize allenylsilanes from simple hydrosilanes, but also represents a new application of dirhodium(II) complexes in catalytic transformation of carbon-carbon triple bond. The highly functionalized allenylsilanes that are produced can be transformed into a series of synthetically useful organic molecules. In this reaction, an intriguing ON-OFF effect of the amine ligand was observed. The reaction almost did not occur (OFF) without addition of Lewis base amine ligand. However, the reaction took place smoothly (ON) after addition of only catalytic amount of amine ligand. Detailed mechanistic studies and density functional theory (DFT) calculations indicate that the reactivity can be delicately improved by the use of tertiary amine. The fine-tuning effect of the tertiary amine is crucial in the formation of the Rh-Si species via a concerted metalation deprotonation (CMD) mechanism and facilitating β-oxygen elimination.

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Source
http://dx.doi.org/10.1002/anie.202409332DOI Listing

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