| Literature DB >> 35423639 |
Meng-Yang Chang1,2, Min-Chen Tsai1,2, Chun-Yi Lin1,2.
Abstract
In this paper, a one-pot facile route for the BiCl3/RuCl3-mediated synthesis of functionalized flavones is described, including: (i) intermolecular ortho-acylation of substituted phenols with cinnamoyl chlorides, and (ii) intramolecular cyclodehydrogenation of the resulting o-hydroxychalcones. The reaction conditions are discussed herein. This journal is © The Royal Society of Chemistry.Entities:
Year: 2021 PMID: 35423639 PMCID: PMC8695955 DOI: 10.1039/d1ra00534k
Source DB: PubMed Journal: RSC Adv ISSN: 2046-2069 Impact factor: 3.361
Scheme 1Synthetic route of flavones.
Scheme 2Our synthetic route towards flavones.
Reaction conditionsa
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|---|---|---|---|---|
| Entry | MCl3 (equiv.) | Solvent | Time (h) | 3a/4a |
| 1 | AlCl3 (2.0) | CCl4 | 10 | 54/— |
| 2 | InCl3 (2.0) | CCl4 | 10 | 67/— |
| 3 | FeCl3 (2.0) | CCl4 | 10 | 70/— |
| 4 | BiCl3 (2.0) | CCl4 | 10 | 65/3 |
| 5 | CeCl3 (2.0) | CCl4 | 10 | — |
| 6 | AuCl3 (2.0) | CCl4 | 10 | — |
| 7 | RuCl3 (2.0) | CCl4 | 10 | — |
| 8 | BiCl3 (3.0) | CCl4 | 10 | 68/5 |
| 9 | BiCl3 (1.0) | CCl4 | 10 | 70/— |
| 10 | BiCl3 (1.0), RuCl3 (1.0) | CCl4 | 10 | 15/68 |
| 11 | BiCl3 (1.0), RuCl3 (1.0) | MeNO2 | 10 | — |
| 12 | BiCl3 (1.0), RuCl3 (1.0) | (CH2Cl)2 | 10 | 35/52 |
| 13 | BiCl3 (1.0), RuCl3 (1.0) | CH2Cl2 | 10 | 78/10 |
| 14 | BiCl3 (1.0), RuCl3 (1.0) | DMF | 10 | — |
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| 16 | BiCl3 (1.0), RuCl3 (1.0) | CCl4 | 20 | — |
| 17 | BiCl3 (1.0), CuCl2 (1.0) | CCl4 | 15 | 60/8 |
| 18 | BiCl3 (1.0), FeCl3 (1.0) | CCl4 | 15 | 72/3 |
| 19 | BiCl3 (1.0), AuCl3 (1.0) | CCl4 | 15 | 70/— |
The reactions were run on a 1.0 mmol scale with phenol 1a, cinnamoyl chloride 2a (1.0 equiv.), metal chlorides (MCl3, equiv.), solvent (20 mL), time (h), reflux.
Isolated yields.
No detection.
No reaction.
Unknown and unidentified complex mixture was isolated.
Synthesis of 4a–4ya
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|---|---|---|---|
| Entry | 1, Ar = | 2, Ar′ = | 4 |
| 1 | 1a, Ph | 2a, Ph | 4a, 81 |
| 2 | 1a, Ph | 2b, 4-MeOC6H4 | 4b, 82 |
| 3 | 1a, Ph | 2c, 3-MeOC6H4 | 4c, 80 |
| 4 | 1a, Ph | 2d, 3,4,5-(MeO)3C6H2 | 4d, 78 |
| 5 | 1a, Ph | 2e, 2,3,4-(MeO)3C6H2 | 4e, 72 |
| 6 | 1a, Ph | 2f, 3,4-CH2O2C6H3 | 4f, 73 |
| 7 | 1a, Ph | 2g, 4-PhC6H4 | 4g, 80 |
| 8 | 1a, Ph | 2h, 3,4-(MeO)2C6H3 | 4h, 72 |
| 9 | 1a, Ph | 2i, 3,4-Cl2C6H3 | 4i, 78 |
| 10 | 1a, Ph | 2a, Ph | 4j, 80 |
| 11 | 1b, 4-MeOC6H4 | 2a, Ph | 4k, 76 |
| 12 | 1c, 3-MeOC6H4 | 2a, Ph | 4l, 68 |
| 13 | 1d, 3-MeO-5-HOC6H3 | 2a, Ph | 4m, 64 |
| 14 | 1e, 3,5-(MeO)2C6H3 | 2j, 4-NO2C6H4 | 4n, 76 |
| 15 | 1a, Ph | 2k, 2-naphthyl | 4o, 70 |
| 16 | 1a, Ph | 2l, 2-FC6H4 | 4p, 67 |
| 17 | 1a, Ph | 2m, 2-furyl | 4q, 60 |
| 18 | 1a, Ph | 2n, 2-thienyl | 4r, 62 |
| 19 | 1a, Ph | 2o, 1-naphthyl | 4s, 75 |
| 20 | 1f, 4-FC6H4 | 2h, 3,4-(MeO)2C6H3 | 4t, 73 |
| 21 | 1g, 4-ClC6H4 | 2h, 3,4-(MeO)2C6H3 | 4u, 72 |
| 22 | 1h, 4-BrC6H4 | 2h, 3,4-(MeO)2C6H3 | 4v, 66 |
| 23 | 1i, 4-MeC6H4 | 2h, 3,4-(MeO)2C6H3 | 4w, 74 |
| 24 | 1c, 3-MeOC6H4 | 2h, 3,4-(MeO)2C6H3 | 4x, 64 |
| 25 | 1j, 3-MeO-2-HOC6H3 | 2a, Ph | 4y, 60 |
| 26 | 1k, 2-NO2C6H4 | 2a, Ph | 4z, — |
All reactions were run on a 1.0 mmol scale with phenols 1a–1k, cinnamoyl chlorides (2a–2o, 1.0 equiv.), BiCl3 (315 mg, 1.0 equiv.), CCl4 (20 mL), 10 h, reflux (77 °C); then RuCl3·3H2O (261 mg, 1.0 equiv.) was added into the reaction mixture, 5 h, reflux (monitored by TLC).
Isolated yields.
3q (10%) was obtained.
No detection.
Scheme 3Plausible mechanism.
Scheme 4Synthesis of 5a.
Scheme 5Synthesis of 6a and 7a.