Organometallics· 2026Q2
Chiral Rh Diene NHC Complexes and Their Application in Rh-Catalyzed Cycloisomerization of Enynes
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- Q2SCImago
- 2026year
Short summary
A cationic Rh complex, [Rh(L1)(ICy)]SbF6, shows improved activity and selectivity in 1,6-enyne cycloisomerization compared to other Rh diene NHC catalysts, attributed to reduced deactivation.
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Key points
- Eight neutral and four cationic Rh diene NHC complexes were synthesized.
- NHC incorporation generally reduced yields and enantioselectivities in asymmetric additions.
- The cationic complex [Rh(L1)(ICy)]SbF6 showed improved activity and selectivity in 1,6-enyne cycloisomerization.
- DFT calculations indicate stereocontrol originates from the chiral diene scaffold, not the NHC ligand.
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Abstract
Abstract Chiral dienes and N-heterocyclic carbenes (NHC) are important ligands for transition-metal catalysis. Surprisingly, both ligand classes are rarely employed together in Rh complexes. To get more detailed insight into the interaction between NHC and diene ligand simultaneously coordinated to the same Rh center, a series of eight neutral Rh diene NHC complexes, [Rh(L1)(NHC)Cl] (NHC = ICy, IMes, IiPr, IPr, SIPr, IMe, (R)-IEtPh, and (S)-IEtPh), and four cationic analogues, [Rh(L1)(NHC)]X (NHC = ICy, IMes, IPr: X = B(ArF)4; NHC = ICy: X = SbF6), were synthesized from [Rh(L1)Cl] by three complementary synthetic routes and anion exchange. X-ray crystal structure analyses revealed pronounced NHC-dependent distortions from a square-planar geometry in neutral complexes, whereas cationic species remain comparatively rigid. Catalytic studies showed a strong dependence on the NHC ligand’s identity: while NHC incorporation generally reduced yields and enantioselectivities in asymmetric 1,2- and 1,4-additions, the cationic complex [Rh(L1)(ICy)]SbF6 delivered improved activity and selectivity in 1,6-enyne cycloisomerization, consistent with reduced catalyst deactivation as confirmed by kinetic analysis. DFT calculations identified that stereocontrol originates from key interactions enforced by the chiral diene scaffold, disrupted by bulkier NHC ligands. These findings highlight the decisive influence of NHC sterics on the structure, stability, and asymmetric reactivity of Rh diene catalysts.
The authors' abstract, as published at the source. Organometallics, 2026 · DOI ↗
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