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Updated: Sep 20, 2026

Preparation of N-(2-alkoxyvinyl)sulfonamides from N-tosyl-1,2,3-triazoles and Subsequent Conversion to Substituted Phthalans and Phenethylamines
Published on: January 3, 2018
Chiral Counteranion-Directed Asymmetric Intramolecular Rhodium-Catalyzed [(3+2+2)] Carbocyclization Reactions with
Yu Zhu1, Zuqing Mao1, P Andrew Evans1
1Department of Chemistry, Queen's University, 90 Bader Lane, KingstonK7L 3N6, Canada.
Abstract:
Transition metal-catalyzed higher-order [m+n+o] carbocyclizations of alkylidenecyclopropanes (ACPs) provide atom-economical routes to complex polycyclic frameworks; however, achieving high enantioselectivity in these transformations remains extremely challenging. Herein, we report the first asymmetric intramolecular rhodium-catalyzed [(3+2+2)] carbocyclization of ACPs, enabled by asymmetric counteranion-directed catalysis (ACDC), to afford bridged tricyclic products with high diastereo- and enantioselectivity. Conventional ligand-controlled approaches failed to provide satisfactory reactivity or enantioinduction, whereas generating a chiral phosphate counteranion in situ from a silver phosphate (e.g., Ag-(S)-TRIP) via salt metathesis with a rhodium complex markedly enhanced enantioselectivity. Enantiomeric excesses of up to 93% were achieved using a matched combination of chiral phosphate and phosphoramidite ligands. The ACDC strategy also enables kinetic resolution of 1,5-diene-tethered ACPs in a new rhodium-catalyzed [(3+2+2)] carbocyclization, providing access to previously inaccessible tricyclic scaffolds with excellent stereocontrol. These results constitute rare examples of highly stereoselective rhodium-catalyzed higher-order carbocyclizations of ACPs and demonstrate that chiral counteranion-directed catalysis can enable asymmetric transition metal-catalyzed [m+n+o] cyclizations that remain inaccessible to conventional chiral-ligand control.
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