Palladium-Catalyzed Divergent Cycloaddition of Arylalkynes with Norbornene Derivatives

Abstract A palladium-catalyzed (3 + 2) cycloaddition between arylalkynes and norbornene derivatives via C–H bond cleavage is reported. This reaction enables the selective synthesis of benzo-fused five-membered cyclic products from a variety of arylalkynes, including electronically biased and alkyl(aryl)alkynes. Notably, the use of a bulky bidentate ligand leads to the (2 + 2) cycloaddition, giving cyclobutene derivatives from the same starting materials. Mechanistic studies indicate that both cycloadditions proceed through hydropalladation of the arylalkynes by Pd(0) and AcOH to generate a vinyl–Pd intermediate. Density functional theory calculations suggest a ligand-to-ligand hydrogen transfer mechanism for this step. The subsequent turnover-determining step is proposed to vary with the ligand environment, involving either C–H bond cleavage or reductive elimination, thereby governing pathway selectivity.

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Publication Details

Journal
ACS Catalysis
Published
2026-09-25
DOI
https://doi.org/10.1021/acscatal.6c04049
Primary Topic
Catalytic C–H Functionalization Methods
Type
article
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article

Palladium-Catalyzed Divergent Cycloaddition of Arylalkynes with Norbornene Derivatives

Mamoru Tobisu, Sakura Takahashi, Yusuke Ano
ACS Catalysis
Catalytic C–H Functionalization Methods
article

Palladium-Catalyzed Divergent Cycloaddition of Arylalkynes with Norbornene Derivatives

Mamoru Tobisu, Sakura Takahashi, Yusuke Ano
article en

Abstract

Abstract A palladium-catalyzed (3 + 2) cycloaddition between arylalkynes and norbornene derivatives via C–H bond cleavage is reported. This reaction enables the selective synthesis of benzo-fused five-membered cyclic products from a variety of arylalkynes, including electronically biased and alkyl(aryl)alkynes. Notably, the use of a bulky bidentate ligand leads to the (2 + 2) cycloaddition, giving cyclobutene derivatives from the same starting materials. Mechanistic studies indicate that both cycloadditions proceed through hydropalladation of the arylalkynes by Pd(0) and AcOH to generate a vinyl–Pd intermediate. Density functional theory calculations suggest a ligand-to-ligand hydrogen transfer mechanism for this step. The subsequent turnover-determining step is proposed to vary with the ligand environment, involving either C–H bond cleavage or reductive elimination, thereby governing pathway selectivity.

ACS Catalysis
Osaka University of Economics (JP), Kindai University (JP), The University of Osaka (JP)
Clean water and sanitation
Openalex Percentile: Top 22%
Catalytic C–H Functionalization Methods
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Palladium-Catalyzed Divergent Cycloaddition of Arylalkynes with Norbornene Derivatives — Mamoru Tobisu, Sakura Takahashi, et al. · ACS Catalysis (2026) | TGRS Research Map | TGRS