Branched-Selective, Catalytic Allene Hydrocarbonation Enabled by Ir(I)/dFppe complexes

The direct addition of C–H bonds across allenes represents an attractive strategy for the construction of allylic frameworks, but controlling the selectivity remains a major challenge. In this Synpacts article, we summarize the development of an Ir(I) catalytic system featuring a perfluorinated bisphosphine ligand, dFppe, which directs the reaction toward branched allylic products with high chemo- and regioselectivity. The method is applicable to several classes of C–H partners, including N-substituted pyrrole carboxamides, furans, and β-unsubstituted acrylamides, and accommodates both mono- and 1,1-disubstituted allenes. As a result, densely substituted products bearing tertiary or all-carbon quaternary centers can be accessed efficiently. Preliminary asymmetric studies with chiral ligands show promising levels of enantioinduction with a pentafluoroaryl-containing bisphosphinite, while DFT calculations indicate that non-covalent interactions involving the fluorinated ligand play a key role in stabilizing the branched-selective reaction pathways.

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Journal
Synlett
Published
2026-09-29
DOI
https://doi.org/10.1055/a-2971-3609
Primary Topic
Catalytic C–H Functionalization Methods
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article
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Branched-Selective, Catalytic Allene Hydrocarbonation Enabled by Ir(I)/dFppe complexes

Alejandro Rey, Fernando López, José Mascareñas
Synlett
Catalytic C–H Functionalization Methods
article

Branched-Selective, Catalytic Allene Hydrocarbonation Enabled by Ir(I)/dFppe complexes

Alejandro Rey, Fernando López, José Mascareñas
article en

Abstract

The direct addition of C–H bonds across allenes represents an attractive strategy for the construction of allylic frameworks, but controlling the selectivity remains a major challenge. In this Synpacts article, we summarize the development of an Ir(I) catalytic system featuring a perfluorinated bisphosphine ligand, dFppe, which directs the reaction toward branched allylic products with high chemo- and regioselectivity. The method is applicable to several classes of C–H partners, including N-substituted pyrrole carboxamides, furans, and β-unsubstituted acrylamides, and accommodates both mono- and 1,1-disubstituted allenes. As a result, densely substituted products bearing tertiary or all-carbon quaternary centers can be accessed efficiently. Preliminary asymmetric studies with chiral ligands show promising levels of enantioinduction with a pentafluoroaryl-containing bisphosphinite, while DFT calculations indicate that non-covalent interactions involving the fluorinated ligand play a key role in stabilizing the branched-selective reaction pathways.

Synlett
Consejo Superior de Investigaciones Científicas (ES), Universidade de Santiago de Compostela (ES)
Openalex Percentile: Top 22%
Catalytic C–H Functionalization Methods
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Branched-Selective, Catalytic Allene Hydrocarbonation Enabled by Ir(I)/dFppe complexes — Alejandro Rey, Fernando López, et al. · Synlett (2026) | TGRS Research Map | TGRS