| Literature DB >> 30079186 |
Rahul Sarkar1, Sankash Mitra1, Santanu Mukherjee1.
Abstract
The first iridium-catalyzed enantioselective vinylogous allylic alkylation of coumarins is presented. Using easily accessible linear allylic carbonates as the allylic electrophile, this reaction installs unfunctionalized allyl groups at the γ-position of 4-methylcoumarins in an exclusively branched-selective manner generally in high yields with an excellent level of enantioselectivity (up to 99 : 1 er).Entities:
Year: 2018 PMID: 30079186 PMCID: PMC6050583 DOI: 10.1039/c8sc02041h
Source DB: PubMed Journal: Chem Sci ISSN: 2041-6520 Impact factor: 9.825
Scheme 1Transition-metal-catalyzed allylic substitution.
Scheme 2Enantioselective vinylogous allylic alkylation.
Ligand screening and reaction optimization
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| Entry | Ligand | Solvent | Base |
| Yield | er |
| 1 |
| DCE | — | 48 | (22) | 92.5 : 7.5 |
| 2 |
| DCE | Cs2CO3 | 48 | <5 | n.d. |
| 3 |
| DCE | DBU | 48 | <5 | n.d. |
| 4 |
| DCE |
| 48 | 72 | 96 : 4 |
| 5 |
| DCE | Et3N | 48 | 74 | 97 : 3 |
| 6 |
| DCE |
| 48 | 76 | 97 : 3 |
| 7 |
| DCE | DABCO | 48 | 84 | 97.5 : 2.5 |
| 8 |
| DCE | DABCO | 48 | <5 | n.d. |
| 9 |
| DCE | DABCO | 48 | 11 | 98 : 2 |
| 10 |
| DCE | DABCO | 48 | <5 | n.d. |
| 11 |
| DCE | DABCO | 48 | 28 | 92 : 8 |
| 12 |
| THF | DABCO | 48 | 11 | 96 : 4 |
| 13 |
| CHCl3 | DABCO | 48 | 67 | 97 : 3 |
| 14 |
| CH2Cl2 | DABCO | 36 | 88 (86) | 98 : 2 |
Reaction conditions: 3 mol% [Ir(COD)Cl]2, 6 mol% ligand, 0.24 mmol of 1a, 0.2 mmol of 2a and 0.2 mmol of base in 0.6 mL solvent. The catalyst was prepared via n-PrNH2 activation.
Yields were determined by 1H-NMR spectroscopy with mesitylene as the internal standard. Isolated yields are given in the parentheses.
The enantiomeric ratio (er) was determined by HPLC analysis on a chiral stationary phase; n.d. = not determined. DCE = 1,2-dichloroethane.
Scope of the enantioselective allylic alkylation with regard to allylic carbonates
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Reaction conditions: 3 mol% [Ir(COD)Cl]2, 6 mol% L1, 0.24 mmol of 1a, 0.2 mmol of 2 and 0.2 mmol of DABCO in 0.6 mL CH2Cl2. The catalyst was prepared via n-PrNH2 activation. Yields correspond to the isolated product after chromatographic purification. er was determined by HPLC analysis on a chiral stationary phase.
Scope of the enantioselective allylic alkylation with respect to coumarins
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Reaction conditions: 3 mol% [Ir(COD)Cl]2, 6 mol% L1, 0.24 mmol of 1, 0.2 mmol of 2 and 0.2 mmol of DABCO in 0.6 mL CH2Cl2. The catalyst was prepared via n-PrNH2 activation. Yields correspond to the isolated product after chromatographic purification. er was determined by HPLC analysis on a chiral stationary phase.
Effect of α-substituent on coumarins in enantioselective allylic alkylation
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| Entry | X |
|
| Yield | er |
| 1 | CN ( | 36 |
| 86 | 98 : 2 |
| 2 | CONH2 ( | 36 |
| 81 | 98 : 2 |
| 3 | CO2Et ( | 48 |
| 80 | 97.5 : 2.5 |
| 4 | CO2Bn ( | 48 |
| 85 | 98 : 2 |
| 5 | CO2H ( | 42 |
| <5 | — |
| 6 | H ( | 48 |
| <5 | — |
Reaction conditions: 3 mol% [Ir(COD)Cl]2, 6 mol% L1, 0.24 mmol of 1, 0.2 mmol of 2a and 0.2 mmol of DABCO in 0.6 mL CH2Cl2. The catalyst was prepared via n-PrNH2 activation.
Yields correspond to the isolated product after chromatographic purification.
er was determined by HPLC analysis on a chiral stationary phase.
1m was isolated in 52% yield.
Scheme 3Attempted and successful synthesis of α-unsubstituted γ-allylcoumarin.
Scheme 4Gram-scale synthesis and synthetic elaboration of γ-allylcoumarin 3aa.
Scheme 5Tentative catalytic cycle for the Ir-catalyzed enantioselective allylic alkylation of coumarins.