| Literature DB >> 35528599 |
Geeta Sai Mani1, Kavitha Donthiboina1, Siddiq Pasha Shaik2, Nagula Shankaraiah1, Ahmed Kamal1,2,3.
Abstract
A novel strategy towards the synthesis of 1,4-disubstituted 1,2,3-triazoles via C-N and N-N bond formation has been demonstrated under transition metal-free and azide-free conditions. These 1,2,3-triazoles were obtained in a regioselective manner from commercially available anilines, aryl alkenes/aryl alkynes and N-tosylhydrazines using I2 under O2 atmosphere. Broad substrate scope, milder reaction conditions, good to moderate yields and clean protocol are the notable features of the method. Moreover, this protocol is amenable for the generation of a library of medicinally important key building blocks. This journal is © The Royal Society of Chemistry.Entities:
Year: 2019 PMID: 35528599 PMCID: PMC9070426 DOI: 10.1039/c9ra06005g
Source DB: PubMed Journal: RSC Adv ISSN: 2046-2069 Impact factor: 4.036
Fig. 1Representative biologically active molecules containing 1,2,3-triazole.
Optimisation of the reaction conditionsa
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| Entry | Additive (equiv.) | Oxidant (equiv.) | Solvent | Temperature (°C) | Time (h) | Yield (%) |
| 1 | I2 (1.0) | — | DMSO | rt | 24 | NF |
| 2 | I2 (1.0) | — | DMSO | 100 | 12 | 10 |
| 3 | I2 (1.0) | O2 | DMSO | 100 | 6 | 76 |
| 4 | I2 (1.0) | TBHP (1) | DMSO | 100 | 6 | 68 |
| 5 | I2 (1.0) | Oxone (1) | DMSO | 100 | 6 | 56 |
| 6 | I2 (1.0) | PhI(OAc)2(1) | DMSO | 100 | 6 | 26 |
| 7 | I2 (1.0) | K2S2O8 (1) | DMSO | 100 | 6 | 38 |
| 8 | I2 (1.0) | O2 | toluene | 100 | 6 | NF |
| 9 | I2 (1.0) | O2 | DMF | 100 | 6 | 56 |
| 10 | I2 (1.0) | O2 | 1,4-Dioxane | 100 | 6 | 32 |
| 11 | I2 (1.0) | O2 | CH3CN | 80 | 6 | 12 |
| 12 | KI (1.0) | O2 | DMSO | 100 | 6 | 10 |
| 13 | NIS (1.0) | O2 | DMSO | 100 | 6 | 34 |
| 14 | TBAI (1.0) | O2 | DMSO | 100 | 6 | 28 |
| 15 | — | O2 | DMSO | 100 | 24 | NF |
| 16 | I2 (1.0) | O2 | — | 100 | 6 | trace |
| 17 | I2 (1.2) | O2 | DMSO | 100 | 6 | 82 |
| 18 | I2 (1.5) | O2 | DMSO | 100 | 6 | 78 |
| 19 | I2 (0.8) | O2 | DMSO | 100 | 6 | 71 |
| 20 | I2 (1.2) | O2 | DMSO | 100 | 6 | 86 |
| 21 | I2 (1.2) | O2 | DMSO | 120 | 4 | 89 |
| 22 | I2 (1.2) | O2 | DMSO | 80 | 12 | 68 |
| 23 | I2 (1.2) | O2 | DMSO | 150 | 4 | 87 |
All reactions were performed with 1p (1 mmol), 2a (1.1 mmol), and 3a (1.5 mmol) in presence of I2 (1.2 equiv.) and under O2 at 120 °C for 6 h.
Isolated yields.
Iodine was added to a solution of 1p (1 mmol), 2a (1.1 mmol) and allowed to stir for 1 h followed by addition of 3a (1.5 mmol) under O2 at 120 °C for 4 h. NF – Not Formed. TBHP = tert-butyl hydroperoxide (70% in water), DMSO = dimethyl sulfoxide, DMF – dimethyl formamide.
Substrate scope for I2 catalysed synthesis of 1,2,3-triazoles from diverse amines, phenyl acetylene and N-tosylhydrazinea
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All reactions were performed with 1 (1 mmol), 2a (1.1 mmol), 3 (1.5 mmol) and I2 (1.2 mmol) in DMSO (3 mL) at 120 °C for 4–6 h.
Substrate scope for synthesis of 1,2,3-triazoles from diverse anilines, diverse aryl alkenes and N-tosylhydrazinea
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All reactions were performed with 1 (1 mmol), 5 (1.1 mmol), 3 (1.5 mmol) and I2 (1.2 mmol) in DMSO (3 mL) at 120 °C for 4–6 h.
Scheme 1Gram scale synthesis of 4a.
Scheme 2Control experiments (a)–(f).
Scheme 3Plausible mechanism for the iodine-catalyzed synthesis of 1,2,3-triazoles.