| Literature DB >> 26548993 |
Debasish Sengupta1, Basudeb Basu2.
Abstract
BACKGROUND: Aryl sulfides have significant importance from biological and pharmaceutical aspects. Transition metal-catalyzed carbon-sulfur cross-coupling reaction represents an important tool for the synthesis of sulfides. Among various transition metals, copper salts or oxides have found vast applicability.Entities:
Keywords: C-S cross-coupling; CuO NPs; Heterogeneous catalyst; On-water reaction; Phenothiazine
Year: 2014 PMID: 26548993 PMCID: PMC4970439 DOI: 10.1186/s13588-014-0017-7
Source DB: PubMed Journal: Org Med Chem Lett ISSN: 2191-2858
Figure 1Some biologically active compounds bearing C-S bond.
Figure 2FT-IR spectra of the ARF and CuO@ARF.
Figure 3XRD patterns of (a) ARF and (b) CuO embedded on the surface of amberlite resin formate (CuO@ARF).
Figure 4TEM images of CuO@ARF. (a) Scale bar 50 nm; (b) 20 nm; (c) average particle size from (b).
Optimization of reaction condition for the C-S cross-coupling using CuO@ARF
| Entry | Solvent | Base | Additive | Temperature/time | Yield (%)b,c |
|---|---|---|---|---|---|
| 1 | Water | K2CO3 | - | 100°C/24 h | 62 |
| 2d | Water | K2CO3 | TBAB | 100°C/8 h | 83 |
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| 4e | Water | K2CO3 | SDS | RT/24 h | 00 |
| 5e | Water | K2CO3 | SDS | 60°C/24 h | 68 |
| 6e | Water | - | SDS | 100°C/24 h | 56 |
| 7 | DMF | K2CO3 | - | 100°C/24 h | 67 |
a4-Iodoanisole (1 mmol), benzenethiol (1.2 mmol), CuO@ARF (200 mg), K2CO3 (1.1 mmol), and solvent (3 mL). bIsolated yield. cSmall quantity of diphenyl disulfide was formed (≤5%). dTBAB (1 eqv) was used. eSDS (10 mol%) was used.
Figure 5Time conversion plots for the C-S cross-coupling between 4-iodoanisole and thiophenol.
CuO@ARF-catalyzed C-S cross-coupling reactions between haloarenes and thiol
| Entry | Aryl halide | Thiol | Time (h) | Product | Yield (%)b |
|---|---|---|---|---|---|
| 1 | (4-H3CO)C6H4I | C6H5SH | 8 | (4-H3CO)H4C6 - S - C6H5 | 90 |
| 2 | (3-H3CO)C6H4I | (4-C1)C6H4SH | 12 | (3-H3CO)H4C6 - S - C6H4(4-C1) | 85 |
| 3 | (2-H3CO)C6H4I | (4-CH3)C6H4SH | 18 | (2-H3CO)H4C6 - S - C6H4(4-CH3) | 75 |
| 4 | (3-NO2)C6H4I | (4-CH3)C6H4SH | 11 | (3-NO2)H4C6 - S - C6H4(4-CH3) | 78 |
| 5 | (4-H3CO)C6H4I | (4-CH3)C6H4SH | 10 | (4-H3CO)H4C6 - S - C6H4(4′-CH3) | 75 |
| 6 | (4-H3C)C6H4Br | C6H5SH | 24 | No reaction | - |
| 7 | (4-CH3CO)C6H4C1 | C6H5SH | 24 | No reaction | - |
| 8c | (4-H3C)C6H4Br | C6H5SH | 24 | No reaction | - |
| 9 | (5-Br)(2-H3CO)C6H3I | C6H5SH | 8 | (5-Br)(2-H3CO)H3C6 - S - C6H5 | 90 |
| 10 | (3-Br)C6H4I | (4-CH3)C6H4SH | 16 | (3-Br)H4C6 - S - C6H4(4-CH3) | 79 |
| 11 | (3-C1)C6H4I | (4-CH3)C6H4SH | 16 | (3-C1)H4C6 - S - C6H4(4-CH3) | 79 |
| 12 | (4-H3CO)C6H4I | (2,5-(CH3)2)C6H4SH | 7 | (4-H3CO)H4C6 - S - C6H3(2,5-(CH3)2) | 89 |
| 13 | (4-H3CO)C6H4I | CySH | 16 | (4-H3CO)H4C6 - S - Cy | 70 |
| 14 | (4-H3CO)C6H4I | 16 | (4-H3CO)H4C6 - S - C5H11- | 73 | |
| 15 | (3-H3CO)C6H4I | 16 | (4-H3CO)H4C6 - S - C7H15- | 76 | |
| 16d | 1,3-C6H4I2 | (4-CH3)C6H4SH | 14 | 1,3-((4-CH3)C6H4S)2 - C6H4 | 79 |
| 17 | (2-Br)C6H4I | (2-NH2)C6H4SH | 8 | (2-Br)H4C6 - S - C6H4(2-NH2) | 82 |
aAryl halide: thiol: catalyst (1 mmol: 1.2 mmol: 200 mg), SDS (10 mol%), and K2CO3 (1.1 mmol) were taken in water (3 mL) and heated at 100°C. bYield refers to pure isolated products characterized by spectroscopic (1H and 13C NMR) data. cCatalyst (300 mg mmol−1 of aryl bromide), SDS (10 mol%), and Cs2CO3 (1.1 mmol). dAryl halide: thiol: catalyst (0.5 mmol: 1.2 mmol: 200 mg), SDS (10 mol%), and K2CO3 (1.1 mmol) were taken in water (3 mL).
Figure 6Comparison of normal time profile with that of hot filtration test. Conversions (±2%) at different time intervals for each plot were measured by HPLC.
Figure 7Recycling experiments using CuO@ARF in the C-S cross-coupling reaction between 4-iodoanisole and thiophenol.
Scheme 1Synthesis of phenothiazine.
Comparison of various metal-based catalytic ‘on-water’ C-S coupling reactions with the present system CuO@ARF
| Entry | Catalytic system | Applicability | Remarks | Reference |
|---|---|---|---|---|
| 01 | CuI (1 mol%) 1.5 eqv TBAB (1 eqv); base KOH (1.5 eqv); 80°C, 10 h | With aryl iodide; bromo- and chloroarenes gave poor yields even using 5 mol% CuI | Excess strong base, not recyclable; CuI is poorly soluble in water, TBAB is moisture sensitive. | [ |
| 02 | CuCl and 1,2-diamine as ligand (>2 eqv); 120°C overnight heating | With iodo- and bromoarenes. No selectivity was examined | Precious 1,2-diamines in >2, equivalents, long reaction time, recyclable using the recovered solution - catalyst was not separated. | [ |
| 03 | Bi2O3/Diamine ligand; (each 10 mol%); 1 eqv KOH at 100°C | With aryl iodide | Presence of a ligand, high loading of the metal catalyst, long reaction time; recyclable using the recovered solution - catalyst was not separated. | [ |
| 04 | CoCl2.6H2O/cationic 2,2′-bipyridyl system, 1 eqv KOH; excess zinc, 100°C | With aryl halides (iodide, bromide, and chloride). | Presence of cationic 2,2′-bipyridyl; excess Zn; long reaction time; recyclable using the recovered solution - catalyst was not separated. | [ |
| 05 | FeCl3.6H2O (10 mol%) - bipyridyl complexes (10 mol%) ; KOH (4 eqv); 100°C, 24 h | With aryl iodide | Excess base, long reaction time; recyclable using the recovered solution - catalyst was not separated. | [ |
| 06 | CuO@ARF; copper oxide (2.8 mol%); base K2CO3 (1.1 eqv); 100°C, 8 h | With aryl iodide | Mild base - nearly equivalent (1: 1.1); shorter reaction time; chemoselectivity between iodo and bromo has been utilized in the synthesis of medicinally important phenothiazine scaffold, easy separation of heterogeneous catalyst (by simple filtration of resin beads), recyclable for five runs without loss of activity; catalytic amount of SDS, ligand-free. |