| Literature DB >> 35519594 |
Xuexiu Xia1, Chengrong Lu1, Bei Zhao1,2, Yingming Yao1,2.
Abstract
Readily available lanthanide amides Ln[N(SiMe3)2]3 (Ln = Nd (1), Sm (2), Eu (3), Yb (4), La (5)), combined with chiral salen ligands H2La ((S,S)-N,N'-di-(3,5-disubstituted-salicylidene)-1,2-cyclohexanediamine) and H2Lb ((S,S)-N,N'-di-(3,5-disubstituted-salicylidene)-1,2-diphenyl-1,2-ethanediamine) were employed in the enantioselective epoxidation of α,β-unsaturated ketones. It was found that the salen-La complex shows the highest efficiency and enantioselectivity. A relatively broad scope of α,β-unsaturated ketones was investigated, and excellent yields (up to 99%) and moderate to good enantioselectivities (37-87%) of the target molecules were achieved. This journal is © The Royal Society of Chemistry.Entities:
Year: 2019 PMID: 35519594 PMCID: PMC9063913 DOI: 10.1039/c9ra01529a
Source DB: PubMed Journal: RSC Adv ISSN: 2046-2069 Impact factor: 4.036
Optimization of the reaction conditionsa
|
| ||||||||
|---|---|---|---|---|---|---|---|---|
| Entry | Cat |
| Ligand |
| Solvent |
| Yield | ee |
| 1 | Nd-1 | 10 | H2L1 | 12 | THF | rt | 99 | 31 |
| 2 | Nd-1 | 10 | H2L2 | 12 | THF | rt | 99 | 23 |
| 3 | Nd-1 | 10 | H2L3 | 12 | THF | rt | 86 | 31 |
| 4 | Nd-1 | 10 | H2L4 | 12 | THF | rt | 99 | 27 |
| 5 | Nd-1 | 10 | H2L5 | 12 | THF | rt | 99 | 30 |
| 6 | Nd-1 | 10 | H2L6 | 12 | THF | rt | 99 | 27 |
| 7 | Nd-1 | 10 | H2L7 | 12 | THF | rt | 86 | 11 |
| 8 | Nd-1 | 10 | H2L8 | 12 | THF | rt | 99 | 13 |
| 9 | Nd-1 | 10 | H2L9 | 12 | THF | rt | 99 | 23 |
| 10 | Sm-2 | 10 | H2L1 | 12 | THF | rt | 99 | 33 |
| 11 | Eu-3 | 10 | H2L1 | 12 | THF | rt | 89 | 35 |
| 12 | Yb-4 | 10 | H2L1 | 12 | THF | rt | 35 | 4 |
| 13 | La-5 | 10 | H2L1 | 12 | THF | rt | 99 | 41 |
| 14 | La-5 | 10 | H2L1 | 12 | Tol | rt | 99 | 5 |
| 15 | La-5 | 10 | H2L1 | 12 | Hex | rt | 87 | 37 |
| 16 | La-5 | 10 | H2L1 | 12 | DME | rt | 89 | 35 |
| 17 | La-5 | 10 | H2L1 | 12 | CH3CN | rt | 99 | 57 |
| 18 | La-5 | 10 | H2L1 | 12 | CH3CN | 0 | 99 | 70 |
| 19 | La-5 | 10 | H2L1 | 12 | CH3CN | -20 | 99 | 80 |
| 20 | La-5 | 10 | H2L1 | 12 | CH3CN | -40 | 82 | 56 |
| 21 | La-5 | 10 | H2L1 | 15 | CH3CN | -20 | 99 | 71 |
| 22 | La-5 | 10 | H2L1 | 20 | CH3CN | -20 | 99 | 75 |
| 23 | La-5 | 5 | H2L1 | 12 | CH3CN | -20 | 99 | 57 |
The reaction was performed with chalcone (0.3 mmol), TBHP (0.36 mmol) in 1 mL of solvent.
HPLC yield.
Determined by chiral HPLC analysis.
Chart 1Epoxidation of α,β-unsaturated ketones catalyzed by complex 5. aReactions were performed with the substrate (0.3 mmol), TBHP (0.36 mmol) in 1 mL CH3CN at −20 °C for 10 h; isolated yield; ee value were determined by chiral HPLC analysis. b15 h. c48 h.
Scheme 1The preparation of complex 8.
The effect of additives on the asymmetric epoxidation of chalconea
|
| ||||
|---|---|---|---|---|
| Entry | Additive |
| Yeild | ee |
| 1 | — | 20 | 91 | 70 |
| 2 | HN(SiMe3)2 | 20 | 98 | 78 |
| 3 | DBU | 20 | 93 | 15 |
| 4 | Pyridine | 20 | 88 | 59 |
| 5 | Et3N | 20 | 86 | 60 |
| 6 | 2,2-Bipyridine | 20 | 85 | 56 |
| 7 | HN(SiMe3)2 | 10 | 93 | 73 |
| 8 | HN(SiMe3)2 | 30 | 95 | 75 |
| 9 | HN(SiMe3)2 | 50 | 90 | 66 |
Reactions were performed with chalcone (0.3 mmol), TBHP (0.36 mmol), 1 mL CH3CN.
HPLC yield.
Determined by chiral HPLC analysis.
Scheme 2The synthesis and the molecular structure of compound 7e.