| Literature DB >> 35541404 |
Essam M Hussein1,2, Nizar El Guesmi1,3, Saleh A Ahmed1,2.
Abstract
A simplistic and highly effective protocol for the synthesis of a new class of poly-functionalized innovative nicotinonitriles incorporating pyrene and/or fluorene moieties has been developed through the domino four-component condensation reaction of 1-(pyren-1-yl)ethanone/1-(9H-fluoren-2-yl)ethanone, numerous aromatic aldehydes, and 3-oxo-3-(pyren-1-yl)propanenitrile/3-(9H-fluoren-2-yl)-3-oxopropanenitrile and ammonium acetate in acetic acid as a reaction medium. The advantages of this approach are the short reaction time, excellent yield, and the easy experimental workup that affords substrate diversity and operative competence under metal-free reaction conditions for the formation of C-C and C-N bonds. The substituent effects on the photophysical property-based absorption and the emission of the synthesized compounds in dichloromethane have been well-investigated. Strong absorption quenching of around 100 nm was observed when substitution of the benzene ring at the C4-position of the pyridine moiety occurred with an electron-donating (-N(CH3)2) group. All of the newly synthesized nicotinonitrile derivatives showed strong blue-green fluorescence emission with maxima in the range between 420-630 nm. These highly pronounced emission spectra will help this family of compounds to find application in many areas and the field of materials science. This journal is © The Royal Society of Chemistry.Entities:
Year: 2019 PMID: 35541404 PMCID: PMC9076224 DOI: 10.1039/c9ra09379f
Source DB: PubMed Journal: RSC Adv ISSN: 2046-2069 Impact factor: 4.036
Scheme 1Model reaction.
The effects of catalysts and solvents on the yield of the model reactiona
| Entry | Catalyst (mol%) | Solvent | Time (h) | Yield (%) |
|---|---|---|---|---|
| 1 | — | MeOH | 24 | — |
| 2 | — | EtOH | 24 | — |
| 3 | — | 2-Propanol | 24 | — |
| 4 | — | DMF | 24 | — |
| 5 | — | Dioxane | 24 | — |
| 6 | K2CO3 (30) | EtOH | 15 | 12 |
| 7 | Piperidine (30) | EtOH | 15 | 16 |
| 8 | ZnCl2 (30) | EtOH | 15 | 21 |
| 9 |
| EtOH | 10 | 35 |
| 10 | HCO2H (30) | EtOH | 12 | 34 |
| 11 | AcOH (30) | EtOH | 7 | 43 |
| 12 | AcOH (30) | MeOH | 7 | 38 |
| 13 | AcOH (30) | 2-Propanol | 8 | 37 |
| 14 | AcOH (30) | DMF | 7 | 39 |
| 15 | AcOH (30) | Dioxane | 10 | 19 |
| 16 | AcOH (50) | EtOH | 7 | 50 |
| 17 | AcOH (100) | EtOH | 7 | 66 |
| 18 | — | EtOH/AcOH (1/1) | 6 | 70 |
| 19 | — | EtOH/AcOH (2/3) | 6 | 79 |
| 20 | — | EtOH/AcOH (1/4) | 5 | 86 |
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Reaction conditions: 1-acetylpyrene (1a, 1.0 mmol), benzaldehyde (2a, 1.0 mmol), 3-(9H-fluoren-2-yl)-3-oxopropanenitrile (3a, 1.0 mmol), ammonium acetate (4, 3.0 mmol), solvent (10 mL)/reflux.
Scheme 2The synthesis of novel poly-functionalized nicotinonitriles containing pyrene and/or fluorene moieties 5a–f–8a–f.
Scheme 3A plausible mechanism pathway for the synthesized compounds 5a–f–8a–f.
Fig. 1Absorption spectra of the four synthesized systems (I)–(IV) corresponding to 5a–f, 6a–f, 7a–f and 8a–f, respectively, in CH2Cl2 (1 × 10−5 M).
Fig. 2Effects of the substituents on the fluorescence emission of (I)–(IV) in CH2Cl2 solution (substituents from left to right are: N(CH3)2, OCH3, H, Cl, and CN, NO2).
Fig. 3Fluorescence spectra of the four synthesized systems (I)–(IV) corresponding to 5a–f, 6a–f, 7a–f and 8a–f, respectively, in dichloromethane (1 × 10−5 M).
The scope of the reaction: synthesis of 2-(9H-fluoren-2-yl)-4-aryl-6-(pyren-1-yl)nicotinonitriles 5a–fa
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Reaction conditions: 1-acetylpyrene (1a, 1.0 mmol), aldehyde (2a–f, 1.0 mmol), 3-(9H-fluoren-2-yl)-3-oxopropanenitrile (3a, 1.0 mmol), ammonium acetate (4, 3.0 mmol), AcOH (10 mL)/reflux.
The scope of the reaction: synthesis of 4-aryl-2,6-di(pyren-1-yl)nicotinonitriles 6a–fa
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Reaction conditions: 1-acetylpyrene (1a, 1.0 mmol), aldehyde (2a–f, 1.0 mmol), 3-oxo-3-(pyren-1-yl)propanenitrile (3b, 1.0 mmol), ammonium acetate (4, 3.0 mmol), AcOH (10 mL)/reflux.
The scope of the reaction: synthesis of 2,6-di(9H-fluoren-2-yl)-4-(aryl)nicotinonitriles 7a–fa
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Reaction conditions: 2-acetylfluorene (1b, 1.0 mmol), aldehyde (2a–f, 1.0 mmol), 3-(9H-fluoren-2-yl)-3-oxopropanenitrile (3a, 1.0 mmol), ammonium acetate (4, 3.0 mmol), AcOH (10 mL)/reflux.
The scope of the reaction: synthesis of 6-(9H-fluoren-2-yl)-4-phenyl-2-(pyren-1-yl)nicotinonitrile 8a–fa
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Reaction conditions: 2-acetylfluorene (1b, 1.0 mmol), aldehyde (2a–f, 1.0 mmol), 3-oxo-3-(pyren-1-yl)propanenitrile (3b, 1.0 mmol), ammonium acetate (4, 3.0 mmol), AcOH (10 mL)/reflux.
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|---|---|---|---|---|---|---|
| R |
| log |
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| log |
|
| a; H | 288 | 279 | ||||
| 311 | 4.63 | 459 | 357 | 4.60 | 455 | |
| 357 | 4.34 | 585 | 593 | |||
| b; N(CH3)2 | 288 | 277 | ||||
| 354 | 4.66 | 449 | 356 | 4.59 | 542 | |
| 633 | 448 | 4.43 | 590 | |||
| c; OCH3 | 288 | 279 | ||||
| 313 | 4.65 | 449 | 346 | 4.62 | 435 | |
| 359 | 4.44 | 580 | 554 | |||
| d; Cl | 311 | 4.72 | 469 | 279 | 474 | |
| 360 | 4.08 | 574 | 348 | 4.66 | 583 | |
| e; CN | 268 | 277 | ||||
| 313 | 4.65 | 482 | 345 | 4.53 | 493 | |
| 370 | 4.21 | 618 | 616 | |||
| f; NO2 | 283 | 278 | ||||
| 313 | 4.68 | 495 | 345 | 4.56 | 500 | |
| 370 | 4.22 | |||||
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|---|---|---|---|---|---|---|
| R |
| log |
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| log |
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| a; H | 316 | 4.67 | 427 | 278 | 483 | |
| 490 | 349 | 4.81 | 544 | |||
| b; N(CH3)2 | 333 | 4.79 | 455 | 277 | ||
| 340 | 4.50 | 526 | ||||
| 615 | 447 | 4.42 | 584 | |||
| c; OCH3 | 314 | 4.92 | 412 | 278 | 475 | |
| 505 | 347 | 4.76 | 543 | |||
| d; Cl | 313 | 4.77 | 435 | 278 | ||
| 499 | 348 | 4.77 | 513 | |||
| e; CN | 316 | 4.68 | 453 | 277 | ||
| 534 | 354 | 4.82 | 548 | |||
| f; NO2 | 316 | 4.70 | 477 | 279 | 454 | |
| 506 | 350 | 4.76 | 457 | |||