| Literature DB >> 31391909 |
Qi Teng1, Nuligonda Thirupathi1, Chen-Ho Tung1, Zhenghu Xu1,2.
Abstract
A rhodium-catalyzed highly regio- and enantioselective hydroalkynylation, generating cis-hydrobenzofuranone-tethered enynes has been developed. The reaction proceeds with a selective head-to-head insertion and symmetry breaking Michael addition cascade. One product was produced from tens of possible isomers through precise control of chemo-, regio-, and stereoselectivities using a single rhodium catalyst. Notable features of this method include 100% atom-economy, mild reaction conditions and a very broad substrate scope.Entities:
Year: 2019 PMID: 31391909 PMCID: PMC6657412 DOI: 10.1039/c9sc02341k
Source DB: PubMed Journal: Chem Sci ISSN: 2041-6520 Impact factor: 9.825
Scheme 1Rh-catalyzed cross-hydroalkynylation of terminal alkynes.
Optimization of reaction conditions
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| Entry | Catalyst | Ligand | Solvent | Yield | ee |
| 1 | [Rh(cod)Cl]2 |
| DCE | 72 | 94 |
| 2 | [Rh(cod)Cl]2 |
| DCE | 94 | 79 |
| 3 | [Rh(cod)Cl]2 |
| DCE | 50 | 83 |
| 4 | [Rh(cod)Cl]2 |
| DCE | 98 | 77 |
| 5 | [Rh(cod)Cl]2 |
| DCE | 99 | 88 |
| 6 | [Rh(cod)Cl]2 |
| DCE | 48 | 98 |
| 7 | [Rh(cod)Cl]2 |
| MeOH | 62 | 99 |
| 8 | [Rh(cod)Cl]2 |
| THF | 0 | — |
| 9 | [Rh(cod)Cl]2 |
| DMF | Trace | — |
| 10 | [Rh(cod)Cl]2 |
| Toluene | 59 | 92 |
| 11 | [Rh(cod)Cl]2 |
| DCE : MeOH = 3 : 1 | 81 | 98 |
| 12 | [Rh(cod)Cl]2 |
| DCE : MeOH = 1 : 1 | 66 | 97 |
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| 14 | [Rh(cp*)Cl2]2 |
| DCE | 0 | — |
| 15 | NiCl2·6H2O |
| DCE | 0 | — |
| 16 | Ni(acac)2 |
| DCE | 0 | — |
Reaction conditions: 1a (0.1 mmol), 2a (0.2 mmol), catalyst (5 mol%), and ligand (10 mol%), solvent (2 mL), rt.
Isolated yield.
Determined by HPLC analysis on a chiral stationary phase.
1a (0.2 mmol), 2a (0.4 mmol), [Rh(cod)Cl]2 (2.5 mol%), and L1 (5 mol%).
Substrate scope of alkene trifluoromethylthiosulfonylation reactions
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| Entry |
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| Yield | ee |
| 1 |
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| 92 | 99 |
| 2 |
|
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| 83 | 98 |
| 3 |
|
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| 90 | 98 |
| 4 |
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| 92 | >99 |
| 5 |
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| 67 | >99 |
| 6 |
|
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| 66 | >99 |
| 7 |
|
|
| 73 | 99 |
| 8 |
|
|
| 80 | 99 |
| 9 |
|
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| 64 | 99 |
| 10 |
|
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| 50 | 92 |
| 11 |
|
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| 58 | 99 |
| 12 |
|
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| 81 | 99 |
| 13 |
|
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| 78 | 98 |
| 14 |
|
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| 68 | 96 |
| 15 |
|
|
| 96 | >99 |
| 16 |
|
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| 97 | 99 |
| 17 |
|
|
| 80 | >99 |
| 18 |
|
|
| 89 | >99 |
| 19 |
|
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| 55 | >99 |
| 20 |
|
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| 46 | 98 |
| 21 |
|
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| 96 | >99 |
| 22 |
|
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| 93 | >99 |
| 23 |
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| 81 | >99 |
| 24 |
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| 86 | 97 |
| 25 |
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| 89 | 99 |
Reaction conditions: 1a (0.2 mmol), 2 (0.4 mmol), [Rh(cod)Cl]2 (2.5 mol%), and L1 (5 mol%), rt.
Isolated yield.
Determined by HPLC analysis on a chiral stationary phase.
Scheme 2X-ray crystallographic structure of 3p.
Scheme 3Scale-up experiment and further synthetic applications of bicyclic enynes.
Scheme 4Control experiments and proposed mechanism.