| Literature DB >> 24282386 |
Harshita Sachdeva1, Rekha Saroj.
Abstract
An extremely efficient catalytic protocol for the synthesis of a series of pyranopyrazole derivatives developed in a one-pot four-component approach in the presence ofEntities:
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Year: 2013 PMID: 24282386 PMCID: PMC3825271 DOI: 10.1155/2013/680671
Source DB: PubMed Journal: ScientificWorldJournal ISSN: 1537-744X
Scheme 1Nano-ZnO catalyzed synthesis of pyrano[2,3-c]pyrazole derivatives in water at room temperature (5a–j).
| Entry | Ar | Time (min.) | Yield (%) | M.P. (°C) |
|---|---|---|---|---|
| Ethyl-6-amino-1,4-dihydro-4-(3,4-dimethoxyphenyl)-3-methylpyrano[2,3- | 3,4-Dimethoxy | 60 | 90 | 135 |
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| Ethyl-6-amino-1,4-dihydro-4-(3-methoxyphenyl)-3-methylpyrano[2,3- | 3-Methoxyphenyl | 55 | 85 | 120 |
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| Ethyl-6-amino-1,4-dihydro-4-(3,4,5-trimethoxyphenyl)-3-methylpyrano[2,3- | 3,4,5-Trimethoxy | 55 | 86 | 160 |
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| Ethyl-6-amino-4-(4-chlorophenyl)-1,4-dihydro-3-methylpyrano[2,3- | 4-Chlorophenyl | 60 | 87 | 140 |
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| Ethyl-6-amino-1,4-dihydro-4-(4-methoxyphenyl)-3-methylpyrano[2,3- | 4-methoxyphenyl | 55 | 89 | 130 |
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| Ethyl-6-amino-1,4-dihydro-3-methyl-4-(5-methylfuran-2-yl)pyrano[2,3- | 3-methyl-2-furyl | 60 | 86 | 142 |
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| Ethyl-6-amino-1,4-dihydro-3-methyl-4-(thiophen-2-yl)pyrano[2,3- | 2-thienyl | 55 | 87 | 115 |
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| Ethyl-6-amino-1,4-dihydro-3-methyl-4-(pyridin-3-yl)pyrano[2,3- | 3-pyridyl | 60 | 85 | 125 |
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| Ethyl-6-amino-1,4-dihydro-4-(2-hydroxyphenyl)-3-methylpyrano[2,3- | 2-Hydroxyphenyl | 60 | 87 | 143 |
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| Ethyl-6-amino-1,4-dihydro-4-(3-hydroxy-4-methoxy phenyl)-3-methylpyrano[2,3- | 3-hydroxy, 4-methoxyphenyl | 60 | 85 | 145 |
Reaction conditions: hydrazine hydrate (1) (1 mmol), methyl acetoacetate (2) (1 mmol), substituted aromatic aldehyde (3) (1 mmol), ethylcyano acetate (4) (1 mmol), and ZnO nanoparticle (9 mol%) in water (2 mL).
Figure 1Recyclability of ZnO nanoparticles.
Comparison of catalytic activity of ZnO nanoparticles in the synthesis of compound 5e by conventional (Δ) heating method and stirring at 25°C.
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Screening of catalysts for one-pot condensation of ethyl cyanoacetate, hydrazine hydrate, 4-methoxy benzaldehyde, and methyl acetoacetate.
| Entry | Catalyst | Catalyst | Yield | Time |
|---|---|---|---|---|
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| Alum | 3 | 66 | 110 |
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| ZnO nps | 9 | 89 | 60 |
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| Mont K10 | 7 | 75 | 80 |
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| P2O5 | 5 | 68 | 110 |
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| Acidic alumina | 7 | 63 | 100 |
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| Silica | 12 | 69 | 100 |
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| Mont KSF | 7 | 58 | 90 |
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| Glacial acetic acid | 12 | 60 | 90 |
Reaction conditions: hydrazine hydrate (1) (1 mmol), methyl acetoacetate (2) (1 mmol), 4-methoxy benzaldehyde (3) (1 mmol), and ethylcyano acetate (4) (1 mmol) in water (2 mL).
Effect of solvent on the reaction of ethyl cyanoacetate, hydrazine hydrate, 4-methoxy benzaldehyde, and methyl acetoacetate under stirring at room temperature.
| Entry | Solvent | Time (min) | Yield (%) |
|---|---|---|---|
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| Ethanol | 90 | 62 |
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| Methanol | 80 | 68 |
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| Water | 60 | 89 |
Reaction conditions: hydrazine hydrate (1) (1 mmol), methyl acetoacetate (2) (1 mmol), 4-methoxy benzaldehyde (3) (1 mmol), ethylcyano acetate (4) (1 mmol), and ZnO nanoparticle (9 mol %).
Optimization of the ZnO nanoparticle catalyzed model reaction for synthesis of 5e.
| Entry | Catalyst (mol %) | Yield (%) |
|---|---|---|
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| 3 | 75 |
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| 6 | 82 |
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| 9 | 89 |
Figure 2XRD Pattern of ZnO nanoparticles.