| Literature DB >> 31780721 |
Zahra Alirezvani1, Mohammad G Dekamin2, Ehsan Valiey1.
Abstract
The uniform decoration of Cu(II) species and magnetic nanoparticles on theEntities:
Year: 2019 PMID: 31780721 PMCID: PMC6883033 DOI: 10.1038/s41598-019-53765-3
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Scheme 1Oxidation/Knoevenagel condensation of different benzyl alcohol derivatives with malononitrile in the presence of the Cs-Pr-Me-Cu(II)-Fe3O4 (1).
Figure 1FESEM images of the commercial chitosan (a), Cs-Pr-Me materials befor modification (b), and Cs-Pr-Me-Cu(II)-Fe3O4 (1) materials at 500 (c) and 200 nm (d) scales.
Figure 2TEM images of the Cs-Pr-Me-Cu(II)-Fe3O4 (1) nanomaterials.
Figure 3Energy dispersive spectroscopy (EDX) pattern and elemental mapping of the Cs-Pr-Me-Cu(II)-Fe3O4 (1) nanocomposite.
Figure 4XRD patterns of the fresh Cs-Pr-Me-Cu(II)-Fe3O4 materials (1, a), recycled sample after five runs (b), melamine (c) and commercial chitosan (d).
Screening of different conditions on the oxidation/Knoevenagel condensation products of benzyl alcohol (2a)a.
| Entry | Catalyst | Catalyst loading (mg) | Oxidant | Solvent | Temperature (°C) | Time (h) | Conversion (%) 4a | Conversion (%) 5a | Conversion (%) 6a |
|---|---|---|---|---|---|---|---|---|---|
| 1 | — | — | TBHPb | CH3CN | 80 | 24 | — | Trace | 58 |
| 2 | — | — | H2O2 | CH3CN | 80 | 24 | — | Trace | 75 |
| 3 | — | — | O2 | CH3CN | 80 | 24 | Trace | Trace | 20 |
| 4 | — | — | Air | CH3CN | 80 | 24 | — | Trace | Trace |
| 5 | Cs-Pr-Me-Cu(II)-Fe3O4 ( | 10 | — | CH3CN | 80 | 24 | 23 | Trace | — |
| 6 | Cs-Pr-Me-Cu(II)-Fe3O4 ( | 10 | TBHPb | CH3CN | 80 | 6 | 64 | — | — |
| 7 | Cs-Pr-Me-Cu(II)-Fe3O4 ( | 10 | H2O2b | CH3CN | 80 | 6 | 16 | trace | 27 |
| 8 | Cs-Pr-Me-Cu(II)-Fe3O4 ( | 10 | TBHPb | CH3CN | 60 | 9 | 62 | — | — |
| 9 | Cs-Pr-Me-Cu(II)-Fe3O4 ( | 10 | TBHPb | CH3CN | r.t. | 12 | 62 | — | — |
| 10 | Cs-Pr-Me-Cu(II)-Fe3O4 ( | 10 | TBHPb | Toluene | r.t. | 15 | 58 | — | — |
| 11 | Cs-Pr-Me-Cu(II)-Fe3O4 ( | 10 | TBHPb | H2O | r.t. | 24 | 34 | 27 | — |
| 12 | Cs-Pr-Me-Cu(II)-Fe3O4 ( | 5 | TBHPb | CH3CN | r.t. | 12 | 62 | — | — |
| 13 | Cs-Pr-Me-Cu(II)-Fe3O4 ( | 15 | TBHPb | CH3CN | r.t. | 10 | 87 | — | — |
| 14 | Cs-Pr-Me-Cu(II)-Fe3O4 ( | 20 | TBHPb | CH3CN | r.t. | 8 | 100 | — | — |
| 15 | Cs-Pr-Me-Cu(II) | 20 | TBHPb | CH3CN | r.t. | 10 | 93 | — | — |
aThe model reaction was run at 5 mmol scale. b5 mmol of TBHP or H2O2 was used for the reaction.
Scheme 2Plausible mechanism for the oxidation/Knoevenagel condensation of different benzyl alcohols 2a-f catalyzed by Cs-Pr-Me-Cu(II)-Fe3O4 (1).
Figure 5The effect of different TBHP oxidant: benzyl alcohol (2a) mole ratios on the yield of oxidation/Knoevenagel condensation product 4a.
Scope of the cascade oxidation/Knoevenagel condensation of different benzyl alcohols 2a-f catalyzed by Cs-Pr-Me-Cu(II)-Fe3O4 (1) under optimized conditionsa,b.
| Entry | Substrate 2 | Time (h) | Crude Yield (%) | Conversion (%) | ||
|---|---|---|---|---|---|---|
| 4a-f | 5a-f | 6a-f | ||||
| 1 | 8 | 87 | 100 | — | — | |
| 2 | 8 | 91 | 79 | — | — | |
| 3 | 7 | 86 | 51 | — | — | |
| 4 | 12 | 69 | 88 | — | — | |
| 5 | 11 | 64 | 67 | — | — | |
| 6 | 24c | 47 | — | — | 43 | |
| 24d | 95 | — | — | 90 | ||
aReaction conditions: benzyl alcohol derivatives (2, 1 mmol), malononitrile (3, 1.1 mmol) and the Cs-Pr-Me-Cu(II)-Fe3O4 (1, 20 mg) in CH3CN at room temperature. bAll products are known and their structures and conversion were established from their 1H NMR spectra data and melting points as compared with authentic samples or literature values. c1 mmol of TBHP was used. d2 mmol of TBHP was used.
Figure 6Reusability of the heterogeneous nanocatalyst Cs-Pr-Me-Cu(II)-Fe3O4 (1) for the synthesis of 4a.
Comparison of the catalytic activity of Cs-Pr-Me-Cu(II)-Fe3O4 (1) with other reported catalysts for the synthesis of the 2-benzylidenemalononitrile (2a).
| Entry | Catalyst | Catalyst loading | Oxidant | Tempereture (°C) | Time (h) | Conversion (%) | Catalyst reuse times | References |
|---|---|---|---|---|---|---|---|---|
| 1 | Ru(OH)x supported on polyethylenimine modified magnetic nanoparticles coated with silica | 100 mg | O2 | two steps (110 °C + r.t.) | 2 steps (10 + 12) | 99 | 2 | [ |
| 2 | NiGa Layered Double Hydroxide (CO3 -2@Ni3Ga-LDH) | 50 mg | O2 | 80 °C | 2 steps (4 + 2) | 80 | 5 | [ |
| 3 | Gold nanoparticles deposited on an amino-functionalized Al-based MIL-53 metal–organic framework (Au@MIL-53(NH2)) | 1 mol% | O2 | 100 °C | 13 | 99 | 5 | [ |
| 4 | RuCl3 on MOF UiO-66 (UiO-66−Ru) | 3.6 mol % Ru | (3.6 mol % Ru) | 100 °C | 6 | 100 | — | [ |
| 4 | Cs-Pr-Me-Cu(II)-Fe3O4 ( | 20 mg | TBHP | r.t | 8 | 100 | 4 | This work |