| Literature DB >> 35516622 |
Jiang Xiao1, Shuang Ren1, Qiang Liu1.
Abstract
An atom-efficient, straightforward method for the synthesis of 2,4,6-triaryl-1,3,5-triazines via iron-catalyzed cyclization of aldehydes with NH4I as the sole nitrogen source is demonstrated. This strategy works smoothly under air atmosphere, and affords symmetrical 2,4,6-trisubstituted and unsymmetrical 1,3,5-triazines with yields from 18% to 72%. Compared to other methods, the present protocol provides a straightforward and atom-efficient approach to 2,4,6-trisubstituted 1,3,5-triazines using an inexpensive, easily available ammonium salt as the sole nitrogen source. Research into the preliminary mechanism indicates that N-benzylidenebenzimidamides are involved in this cyclization reaction. This journal is © The Royal Society of Chemistry.Entities:
Year: 2020 PMID: 35516622 PMCID: PMC9054497 DOI: 10.1039/d0ra03323e
Source DB: PubMed Journal: RSC Adv ISSN: 2046-2069 Impact factor: 3.361
Scheme 1Methods for the synthesis of 1,3,5-triazine derivatives.
Optimization of reaction conditionsa
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| Entry | Catalysis | Temperature [°C] | Solvent | Yield |
| 1 | FeCl3 | 150 | Chlorobenzene | 62% |
| 2 | CuCl2 | 150 | Chlorobenzene | 53% |
| 3 | CoCl2 | 150 | Chlorobenzene | 49% |
| 4 | CuO | 150 | Chlorobenzene | 32% |
| 5 | FeCl3 | 140 | Chlorobenzene | 61% |
| 6 | FeCl3 | 130 | Chlorobenzene | 60% |
| 7 | FeCl3 | 120 | Chlorobenzene | 32% |
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| 9 | FeCl3 | 130 | DMSO | — |
| 10 | FeCl3 | 130 | DMF | — |
Reaction conditions: benzaldehyde 1a (0.5 mmol), NH4I (0.5 mmol), catalysis (20% mmol), solvent (2.0 mL).
Yield calculated by GC-MS.
DMF = dimethylformamide.
24 h.
Scope of various aldehyde and NH4Ia
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Reaction conditions: aldehyde (0.5 mmol), NH4I 2 (0.5 mmol), FeCl3 (20% mmol), toluene (2.0 mL) were heated at 130 °C for 15 h.
Scope of different aldehyde and NH4Ia
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Reaction conditions: aldehyde 1 (0.3 mmol), aldehyde 1, (0.2 mmol), NH4I (0.5 mmol), FeCl3 (20% mmol), toluene (2.0 mL) were heated at 130 °C for 15 h.
Scheme 2Control experiments.
Scheme 3Proposed reaction mechanism.