| Literature DB >> 24758931 |
Huanan Hu1, Fangli Qiu2, Anguo Ying3, Jianguo Yang4, Haiping Meng5.
Abstract
A mild, efficient, and environmentally benign protocol for the synthesis of tetrahydrobenzo[b]pyran derivatives in the presence of readily accessible, biodegradable, and choline hydroxide based ionic liquid as catalyst has been established. The key features of the reported methodology include good to excellent yields of desired products, simple work-up procedure and good recyclability of catalysts, which may be a practical alternative to the existing conventional processes for the preparation of 4-H pyrans to cater to the requirements of academia as well as industry.Entities:
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Year: 2014 PMID: 24758931 PMCID: PMC4013668 DOI: 10.3390/ijms15046897
Source DB: PubMed Journal: Int J Mol Sci ISSN: 1422-0067 Impact factor: 5.923
Scheme 1.Preparation of choline hydroxide based ionic liquids.
Optimization of reaction conditions for the synthesis of tetrahydrobenzo[b]pyran a.
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| Entry | Ionic Liquids | Mol % | Solvents (10 mL) | Time (h) | Yield (%) |
| 1 | [bmim]BF4 | 20 | Water | 5 | 17 |
| 2 | [bmim]PF6 | 20 | Water | 5 | 8 |
| 3 | [DBU][Ac] | 20 | Water | 2 | 31 |
| 4 | [DBU][Lac] | 20 | Water | 2 | 28 |
| 5 | [Ch][Ac] | 20 | Water | 3 | 52 |
| 6 | [Ch][Pr] | 20 | Water | 3 | 47 |
| 7 | [Ch][Bu] | 20 | Water | 3 | 55 |
| 8 | [Ch][Lac] | 20 | Water | 3 | 55 |
| 9 | [Ch][OTf] | 20 | Water | 3 | 38 |
| 10 | [Ch][OH] | 20 | Water | 2 | 95 |
| 11 | [bmim]OH | 20 | Water | 3 | 86 |
| 12 | [Ch][OH] | 10 | Water | 2 | 96 |
| 13 | [Ch][OH] | 5 | Water | 5 | 83 |
| 14 | [Ch][OH] | 30 | Water | 2 | 95 |
| 15 | [Ch][OH] | 50 | Water | 2 | 96 |
| 16 | [Ch][OH] | 10 | CH2Cl2 | 5 | Trace |
| 17 | [Ch][OH] | 10 | THF | 3 | Trace |
| 18 | [Ch][OH] | 10 | Ethanol | 2 | 82 |
| 19 | [Ch][OH] | 10 | Methanol | 2 | 68 |
All reactions were carried out as follows: the mole ratio of p-anisaldehyde: malononitrile: dimedone was 1:1:1 and the reaction temperature was 80 °C;
Isolated yields;
The reactions were conducted in the presence of reflux conditions.
Synthesis of pyran derivatives via condensation of aromatic aldehydes, malononitrile and dimedone using [Ch][OH] as catalyst in water.
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| Entry | R1 | Time (h) | Products | Yields (%) | ||
| 1 | C6H5 | 1 | 2a | 92 | 232–234 | 234–235 [ |
| 4-NO2-C6H4 | 30 min | 2b | 88 | 176–177 | 177–178 [ | |
| 2 | 3-NO2-C6H4 | 20 min | 2c | 95 | 213–214 | 213–215 [ |
| 3 | 4-Cl-C6H4 | 1 | 2d | 86 | 212–214 | 209–210 [ |
| 4 | 4-F-C6H4 | 10 min | 2e | 90 | 198–200 | 200 [ |
| 5 | 4-Br-C6H4 | 1 | 2f | 91 | 165–168 | 169–170[ |
| 6 | 4-CN-C6H4 | 30 min | 2g | 90 | 227–229 | 224–226 [ |
| 7 | 4-OH-C6H4 | 2 | 2h | 86 | 206–298 | 207–209 [ |
| 8 | 4-MeO-C6H4 | 3 | 2i | 95 | 198–200 | 199–200 [ |
| 9 | 4-N(Me)2-C6H4 | 5 | 2j | 98 | 216–218 | 217–218 [ |
| 10 | 3,4-2(MeO)-C6H3 | 3 | 2k | 92 | 184–185 | 182–184 [ |
| 11 | 3-Pyridine | 10 | 2l | 0 | - | - |
| 12 | 2-Furyl | 3 | 2m | 82 | 223–226 | 222–224 [ |
| 13 | 2-Naphthyl | 10 | 2n | 0 | - | - |
| 14 | 2-Thienyl | 1 | 2o | 85 | 210–212 | 210–212 [ |
| 15 | C6H5-CH=CH- | 5 | 2p | 68 | 205–207 | 208–210 [ |
| 16 | CH3CH2 | 3 | 2q | 85 | 190–192 | 190–194 [ |
| 17 | CH3CH2CH2 | 3 | 2r | 79 | 192–194 | 192–193 [ |
Isolated yields;
20 Mol % amount of [Ch][OH] and reaction temperature of 100 °C were required;
Only Knoevenagel condensation products were detected.
Scheme 2.[Ch][OH] promoted one-pot synthesis of 4H-benzo[b]pyrans via the reaction of aromatic aldehydes, cyanoacetate or 2-(benzo[d]thiazol-2-yl)acetonitrile, and dimedone.
Figure 1.Reuse of ionic liquid for three components condensation of p-anisaldehyde (100 mmol), malononitrile and dimedone in the presence of ionic liquid [Ch]][OH] in aqueous solution.
Scheme 3.The proposed mechanism for [Ch][OH] promoted synthesis of tetrahydrobenzo[b]pyrans.