| Literature DB >> 35530585 |
Thu N M Le1, Son H Doan1, Phuc H Pham1, Khang H Trinh1, Tien V Huynh1, Tien T T Tran1, Minh-Vien Le1, Tung T Nguyen1, Nam T S Phan1.
Abstract
An La0.6Sr0.4CoO3 strontium-doped lanthanum cobaltite perovskite was prepared via a gelation and calcination approach and used as a heterogeneous catalyst for the synthesis of triphenylpyridines via the cyclization reaction between ketoximes and phenylacetic acids. The transformation proceeded via the oxidative functionalization of the sp3 C-H bond in phenylacetic acid. The La0.6Sr0.4CoO3 catalyst demonstrated a superior performance to that of the pristine LaCoCO3 as well as a series of homogeneous and heterogeneous catalysts. Furthermore, the La0.6Sr0.4CoO3 catalyst was facilely recovered and reused without considerable decline in its catalytic efficiency. To the best of our knowledge, the combination of ketoximes with easily available phenylacetic acids is novel. This journal is © The Royal Society of Chemistry.Entities:
Year: 2019 PMID: 35530585 PMCID: PMC9069450 DOI: 10.1039/c9ra04096j
Source DB: PubMed Journal: RSC Adv ISSN: 2046-2069 Impact factor: 4.036
Scheme 1The difference between previous works (a) and this work (b).
Studies of reaction conditionsa
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|---|---|---|---|---|
| Entry | Solvent | Catalyst amount (mol%) | Oxidant | Yield |
| 1 | Chlorobenzene | 5 | DTBP | 54 |
| 2 | Heptane | 5 | DTBP | 22 |
| 3 | Toluene | 5 | DTBP | 83 |
| 4 | Toluene | 5 | DTBP | 17 |
| 5 | Toluene | 0 | DTBP | 4 |
| 6 | Toluene | 1 | DTBP | 21 |
| 7 | Toluene | 3 | DTBP | 51 |
| 8 | Toluene | 7 | DTBP | 87 |
| 9 | Toluene | 5 | K2S2O8 | 8 |
| 10 | Toluene | 5 | AgNO3 | 11 |
| 11 | Toluene | 5 | Oxygen | 2 |
| 12 | Toluene | 5 | TBHP | 55 |
Reaction conditions: acetophenone oxime acetate (0.6 mmol), phenylacetic acid (0.2 mmol), solvent (2 mL), oxidant (0.6 mmol), at 140 °C under air for 2 h and under argon for 6 h.
GC yield.
Reaction at 120 °C.
TBHP in water. DTBP = di-tert-butylperoxide, TBHP = tert-butyl hydroperoxide.
Fig. 1Leaching experiment indicating that no additional 2,4,6-triphenylpyridine was formed after the removal of the catalyst.
The oxidative cyclization between acetophenone oxime acetate and phenylacetic acid utilizing different catalystsa
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|---|---|---|---|
| Entry | Homogeneous catalyst | Heterogeneous catalyst | Yield |
| 1 | FeCl3 | 26 | |
| 2 | FeCl2 | 6 | |
| 3 | Fe(NO3)3 | 3 | |
| 4 | FeSO4 | 13 | |
| 5 | CuSO4 | 57 | |
| 6 | Cu(NO3)2 | 8 | |
| 7 | NiSO4 | 38 | |
| 8 | Co(NO3)2 | 4 | |
| 9 | La(NO3)2 | 2 | |
| 10 | Sr(NO3)2 | 39 | |
| 11 | Cu(BDC) | 70 | |
| 12 | ZIF-8A | 60 | |
| 13 | UiO-66·TFA | 43 | |
| 14 | La2O3 | 19 | |
| 15 | CoO | 11 | |
| 16 | SrO | 38 | |
| 17 | LaCoCo3 | 40 | |
| 18 | La0.6Sr0.4CoO3 | 83 | |
Reaction conditions: acetophenone oxime acetate (0.6 mmol), phenylacetic acid (0.2 mmol), DTBP (0.6 mmol), toluene (2 mL), catalyst (5 mol%), 140 °C, under air for 2 h and under argon for 6 h.
GC yield.
Scheme 2Control experiments.
Scheme 3Proposed reaction mechanism.
Fig. 2Reutilization of the La0.6Sr0.4CoO3 catalyst.
Fig. 3XRD results for the fresh (a) and reutilized (b) La0.6Sr0.4CoO3 perovskite catalysts.
Fig. 4FT-IR observations for the fresh (a) and reutilized (b) La0.6Sr0.4CoO3 perovskite catalysts.
Synthesis of 2,4,6-triphenylpyridines via oxidative cyclization reaction between ketoximes and phenylacetic acids utilizing the La0.6Sr0.4CoO3 perovskite catalysta
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|---|---|---|---|---|
| Entry | Reactant 1 | Reactant 2 | Product | Yield |
| 1 |
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| 79 |
| 2 |
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| 62 |
| 3 |
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| 74 |
| 4 |
|
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| 67 |
| 5 |
|
|
| 55 |
| 6 |
|
|
| 68 |
| 7 |
|
|
| 73 |
| 8 |
|
|
| 69 |
| 9 |
|
|
| 72 |
| 10 |
|
|
| 54 |
| 11 |
|
|
| 53 |
| 12 |
|
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| 72 |
| 13 |
|
|
| 53 |
| 14 |
|
|
| 59 |
| 15 |
|
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| 50 |
Reaction conditions: phenylacetic acids (0.2 mmol), ketoximes (0.6 mmol), DTBP (0.6 mmol), toluene (2 mL), La0.6Sr0.4CoO3 catalyst (5 mol%), 8 h at 140 °C under air for 2 h and under argon for 6 h.
Isolated yield.