| Literature DB >> 30838201 |
Noura Aflak1, Hicham Ben El Ayouchia1, Lahoucine Bahsis1, El Mountassir El Mouchtari1, Miguel Julve2, Salah Rafqah1, Hafid Anane1, Salah-Eddine Stiriba1,2.
Abstract
1,4-Disubstituted-1,2,3-triazoles, considered as an important and useful class of heterocycles with potentiEntities:
Keywords: 1, 2, 3-triazole; activated carbon; click chemistry; copper; heterogeneous catalyst; recovery/recycling; water
Year: 2019 PMID: 30838201 PMCID: PMC6389623 DOI: 10.3389/fchem.2019.00081
Source DB: PubMed Journal: Front Chem ISSN: 2296-2646 Impact factor: 5.221
Scheme 1Lipshutz's protocol for the preparation of “copper-in-charcoal.”
Scheme 2Preparation scheme of copper on carbon support made from Argan nut shells Cu-CANS.
The specific surface area, average pore diameter, and Vtotal of pores of CANS and CC.
| CANS | 1151.75 | 2.204 | 0.635 |
| CC | 702.76 | 1.168 | 0.193 |
CANS, carbon from Argan Nut Shells biomass; CC, commercially carbon.
Figure 1XRD results of CANS support (A), Cu-CANS material (B), and phenylacetylene in Cu-CANS (C).
Figure 2XRD results of CC support (A), Cu-CC material (B), and phenylacetylene in Cu-CC (C).
Figure 3Comparative FT-IR spectra of CuI precursor (red), Cu-CC (blue), and Cu-CANS material (green).
Figure 4SEM images of CANS support (a), Cu-CANS (b), and Cu-CC material (c).
Figure 5EDX spectrum of (A) CANS and (B) Cu-CANS catalyst.
Isotherm constants for adsorption of CuI on CANS and CC activated carbons.
| CANS | 1,250 | 0.003 | 0.86 | 7.58 | 1.29 | 0.98 |
| CC | 0.63 | 0.037 | 0.90 | 1.05 | 1.09 | 0.95 |
Catalyst and conditions screening for the cycloaddition of benzyl azide and phenylacetylene.
| 1 | – | – | Water | 24 | 0 |
| 2 | CC | – | Water | 24 | 0 |
| 3 | CuCl-CC | 5 | Water | 6 | 66 |
| 4 | CuBr-CC | 5 | Water | 6 | 74 |
| 5 | CuI-CC | 3 | Water | 6 | 99 |
| 6 | CuI-CC | 2 | Water | 6 | 98 |
| 7 | CuI-CC | 0.5 | Water | 6 | 77 |
| 8 | CuI-CC | 0.1 | Water | 6 | 74 |
| 9 | CuI-CC | 5 | Ethanol | 6 | 85 |
| 10 | CuI-CC | 5 | Methanol | 6 | 74 |
| 11 | CuI-CC | 5 | Toluene | 6 | 80 |
| 12 | CuI-CC | 5 | Acetonitrile | 6 | 98 |
| 13 | CuI-CC | 5 | Hexane | 6 | 35 |
Reaction conditions: benzylazide (0.75 mmol); phenylacetylene (0.62 mmol); solvent (5 mL); and catalyst were mixed and stirred at room temperature.
Isolated yields.
Cycloaddition of azides and alkynes catalyzed by copper-carbon catalysts.
| 1 | Cu-CC | 77 | 154 | 25.66 | |||
| Cu-CANS | 95 | 190 | 31.66 | ||||
| 2 | Cu-CC | 60 | 132 | 22.00 | |||
| Cu-CANS | 88 | 176 | 29.33 | ||||
| 3 | Cu-CC | 91 | 182 | 30.33 | |||
| Cu-CANS | 89 | 178 | 29.66 | ||||
| 4 | Cu-CC | 71 | 142 | 23.00 | |||
| Cu-CANS | 92 | 184 | 30.66 | ||||
| 5 | Cu-CC | 76 | 152 | 25.33 | |||
| Cu-CANS | 95 | 190 | 31.66 | ||||
| 6 | Cu-CC | 75 | 150 | 25.00 | |||
| Cu-CANS | 94 | 188 | 31.33 | ||||
| 7 | Cu-CC | 76 | 152 | 25.33 | |||
| Cu-CANS | 87 | 122 | 20.33 | ||||
| 8 | Cu-CC | 61 | 182 | 30.33 | |||
| Cu-CANS | 73 | 146 | 24.33 | ||||
| 9 | Cu-CC | 76 | 152 | 25.33 | |||
| Cu-CANS | 96 | 192 | 32.00 | ||||
| 10 | Cu-CC | 74 | 148 | 24.66 | |||
| Cu-CANS | 80 | 160 | 26.66 | ||||
| 11 | Cu-CC | 76 | 152 | 25.33 | |||
| Cu-CANS | 78 | 156 | 26.00 |
Reaction conditions: azide (0.75 mmol); alkyne (0.62 mmol); water (5 mL); catalyst (0.005 equivalent) mixed at room temperature.
Isolated yields.
TON, Turnovers number (moles substrate/moles of catalyst).
TOF, Turnover frequency (TON/time of reaction).
Figure 6The proposed mechanism for the formation of 1-4-disubstituted-1,2,3-triazoles catalyzed by Cu/carbon.
Figure 7Recycling results of the Cu-CC and Cu-CANS catalytic systems in the copper-catalyzed cycloaddition reaction of phenylacetylene and benzyl azide.
Loadings of copper in each 100 mg of copper-carbon catalyst.
| Cu-CC | 3.82 | 3.65 | 0.82 |
| Cu-CANS | 1.38 | 1.09 | 0.58 |
Comparison of the catalytic activity of cooper-carbon catalysts with others heterogeneous copper-based catalytic systems.
| 1 | Cu-CC | 6 | 1 | r.t./water | 10 | 98 | This work |
| 2 | Cu-CANS | 6 | 1 | r.t./water | 10 | 98 | |
| 3 | Cu/C | 48 | 10 | 23°C/dioxane | – | 65 | Lipshutz and Taft, |
| 4 | Cu2O/C | 2 | 5 | r.t./i-PrOH:H2O | 3 | 82 | López-Ruiz et al., |
| 5 | TRGO/Cu | 48 | 2 | 40°C/THF | 4 | 99 | Shaygan Nia et al., |
| 6 | Cu-Alginate | 18 | 21 | r.t./water | 3 | 98 | Rajender Reddy et al., |
| 7 | Cu-Chitosan | 6 | 10 | r.t./water | 5 | 90 | Anil Kumar et al., |
| 8 | Cu-Hydroxyappatite | 16 | 5 | 50°C/water | 8 | 95 | Masuyama et al., |
| 9 | Cu-zeolite | 15 | 10 | r.t./toluene | 5 | 83 | Chassaing et al., |