| Literature DB >> 36199302 |
Mohaddeseh Dehnavian1, Abdulhamid Dehghani1, Leila Moradi1.
Abstract
In this contribution, a green, simple, efficient, and straightforward nanocatalytic process was developed for the synthesis of benzo[a]pyrano[2,3-c]phenazine derivatives under mild thermal conditions. In this regard, the copper oxide quantum dot-modified magnetic silica mesoporous nanoparticles (M-MSNs/CuO(QDs)) were synthesized by surface modification of M-MSNs with CuO QDs to prepare a highly powerful magnetic core-shell nanocatalyst. The prepared nanocatalyst was then characterized for its functionality, size, morphology, elemental composition, surface area, crystallinity, and magnetic properties. Afterwards, it was applied for the synthesis of benzo[a]pyrano[2,3-c]phenazine derivatives under green reaction conditions. The factors affecting the reaction yield were optimized by the one-factor-at-a-time optimization method. Under obtained optimal conditions, the developed method showed a reaction yield range as high as 86-95% for different derivatives. The reusability studies were performed for indexing the cycling stability of the prepared magnetic nanocatalyst. The results exhibited that the catalytic efficiency of the nanocatalyst was saved for at least 5 operational times, showing high cycling stability of M-MSNs/CuO(QDs). Finally, the catalytic performances of the nanocatalyst was compared with the reported ones, revealing that the M-MSNs/CuO(QDs) presents very better performances toward the synthesis of benzo[a]pyrano[2,3-c]phenazine derivatives than the reported ones. This journal is © The Royal Society of Chemistry.Entities:
Year: 2022 PMID: 36199302 PMCID: PMC9443676 DOI: 10.1039/d2ra03887k
Source DB: PubMed Journal: RSC Adv ISSN: 2046-2069 Impact factor: 4.036
Scheme 1Preparation of benzo[a]pyrano-[2,3-c]phenazines using M-MSNs/CuO(QDs).
Fig. 1The step-wise synthesis of the M-MSNs/CuO(QDs).
Fig. 2FT-IR spectra of (a) Fe3O4, (b) M-MSNs and (d) M-MSNs/CuO(QDs).
Fig. 3SEM and TEM images of M-MSNs (a) and (c) and M-MSNs/CuO(QDs) (b) and (d).
Fig. 4EDX spectrum of M-MSNs/CuO(QDs).
Fig. 5Elemental EDX mapping of O, Fe, Si, and Cu in M-MSNs/CuO(QDs).
Fig. 6The X-ray diffraction (XRD) pattern of (a) CuO QDs, (b) Fe3O4, (c) M-MSNs and (d) M-MSNs/CuO(QDs).
Fig. 7Magnetic hysteresis curves of (a) Fe3O4, and (b) M-MSNs/CuO(QDs).
Fig. 8BET results of M-MSNs (a) & M-MSNs/CuO(QDs) (b).
Optimization of the reaction conditions for the synthesis of benzo[a]pyrano-[2,3-c]phenazinesa
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| Entry | Catalyst (g) | Solvent | Temp. (°C) | Time (min) | Yield |
| 1 | 0.007 | H2O | Reflux | 85 | Trace |
| 2 | 0.007 | EtOH/H2O | Reflux | 80 | 65 |
| 3 | 0.007 | Toluene | Reflux | 70 | 30 |
| 4 | 0.007 | EtOH | 78 | 70 | 95 |
| 5 | 0.007 | EtOH | r.t. | 130 | 25 |
| 6 | 0.007 | EtOH | 60 | 95 | 55 |
| 7 | 0.007 | EtOH | 70 | 80 | 68 |
| 8 | 0.005 | EtOH | 78 | 110 | 32 |
| 9 | 0.006 | EtOH | 78 | 80 | 65 |
| 12 | 0.008 | EtOH | 78 | 70 | 95 |
Reaction conditions: 2-hydroxy-1,4-naphthoquinone (1 mmol), benzene-1,2-diamine (1 mmol), 4-nitrobenzaldehyde (1 mmol), malononitrile (1 mmol), M-MSNs/CuO(QDs), solvent (2 mL).
Mol% of catalyst was 0.0018, 0.0016, 0.0013 and 0.0021 for 7, 6, 5 and 8 mg of catalyst respectively.
Isolated yield.
Synthesis of benzo[a]pyrano-[2,3-c]phenazine derivatives catalyzed by M-MSNs/CuO(QDs)a
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Reaction conditions: 2-hydroxy-1,4-naphthoquinone (1 mmol), benzene-1,2-diamine (1 mmol), different aromatic aldehydes (1 mmol), malononitrile (1 mmol), M-MSNs/CuO QDs (7 mg/0.0018 mol%), EtOH (2 mL), 78 °C.
Scheme 2Mechanism of the catalytic synthesis of benzo[a]pyrano[2,3-c]phenazine derivatives catalyzed by M-MSNs/CuO(QDs).
Fig. 9Reusability of the prepared M-MSNs/CuO(QDs) nanocatalyst.
Comparison of the catalytic performances of the as-prepared nanocatalyst with the reported ones
| Entry | Catalyst | Condition | Time (min) | Yield (%) | Ref. |
|---|---|---|---|---|---|
| 1 | AcOH | MW, r.t. | 9 | 92 |
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| 2 | Gl.AcOH | 70 °C | 180 | 85 |
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| 3 | Oxalic acid | EtOH/H2O, reflux | 120 | 92 |
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| 4 | Et3N | MeCN/EtOH, r.t. | 1440 | 86 |
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| 5 | DABCO | EtOH, reflux | 600 | 60 |
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| 6 | Pyridine | EtOH, r.t. | 45 | 90 |
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| 7 | β-Cyclodextrin | EtOH/H2O, 70 °C | 50 | 92 |
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| 8 | M-MSNs | EtOH, 78 °C | 70 | 67 | — |
| 9 | CuO(QDs) | EtOH, 78 °C | 70 | 81 | — |
| 10 | M-MSNs/CuO(QDs) | EtOH, 78 °C | 70 | 95 | This work |