| Literature DB >> 35478668 |
Sara Sobhani1, Hadis Hosseini Moghadam1, Seyed Ruhollah Derakhshan1, José Miguel Sansano2.
Abstract
A direct imination reaction was developed by tandem reaction of alcohols and nitro compounds in the presence of Cu-isatin Schiff base-γ-Fe2O3 as a nanomagnetically recyclable catalyst under solvent-free conditions. By this method, various imines were prepared in good to high yields from one-pot reaction of various alcohols (primary aromatic and aliphatic) and nitro compounds (aromatic and aliphatic) via an auto-hydrogen transfer reaction. Use of an inexpensive and easily reusable catalyst, without requiring any additives or excess amounts of benzyl alcohol as the reaction solvent are the other advantages of this method. This catalytic system has the merits of cost effectiveness, environmental benignity, excellent recyclability and good reproducibility. This journal is © The Royal Society of Chemistry.Entities:
Year: 2021 PMID: 35478668 PMCID: PMC9033619 DOI: 10.1039/d1ra02347k
Source DB: PubMed Journal: RSC Adv ISSN: 2046-2069 Impact factor: 4.036
Scheme 1Preparation of Cu-isatin Schiff base-γ-Fe2O3.
Fig. 1FT-IR spectra of (a) amino-functionalized γ-Fe2O3, (b) isatin Schiff base-γ-Fe2O3 and (c) Cu-isatin Schiff base-γ-Fe2O3.
Fig. 2XRD pattern of Cu-isatin Schiff base-γ-Fe2O3.
Fig. 3TGA diagram of Cu-isatin Schiff base-γ-Fe2O3.
Fig. 4(a) TEM image of Cu-isatin Schiff base-γ-Fe2O3 and (b) particle size distribution histogram of Cu-isatin Schiff base-γ-Fe2O3. (c) SEM image of Cu-isatin Schiff base-γ-Fe2O3.
Fig. 5Magnetization curves of (a) Cu-isatin Schiff base-γ-Fe2O3 and (b) γ-Fe2O3.
Fig. 6(a) XPS patterns of the Cu-isatin Schiff base-γ-Fe2O3, (b) C (1s), (c) N (1s), (d) Cu.
Optimization of the tandem imine formation via auto-hydrogen transfer from benzyl alcohol to nitrobenzene
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|---|---|---|---|---|---|---|
| Entry | Catalyst (mol%) | Solvent | Base | Temperature (°C) | Time (h) | Isolated yield (%) |
| 1 | 2 | — | K2CO3 | 100 | 5 | 42 |
| 2 | 2 | — | Et3N | 100 | 24 | Trace |
| 3 | 2 | — | Na2CO3 | 100 | 24 | 35 |
| 4 | 2 | — | KOH | 100 | 9 | 95 |
| 5 | 2 | — | NaOH | 100 | 9 | 86 |
| 6 | 2 | — | — | 100 | 6 | 30 |
| 7 | 2 | EtOH | KOH | 65 | 3 | 22 |
| 8 | 2 | H2O | KOH | 80 | 24 | 0 |
| 9 | 2 | Acetonitrile | KOH | 68 | 24 | Trace |
| 10 | 2 | Benzyl alcohol | KOH | 100 | 7 | 81 |
| 11 | 2 |
| KOH | 50 | 5 | 35 |
| 12 | 2 | Toluene | KOH | 90 | 3 | 32 |
| 13 | 2 | Ethyl acetate | KOH | 60 | 24 | Trace |
| 14 | 2 | — | KOH | r.t. | 24 | Trace |
| 15 | 2 | — | KOH | 65 | 7 | 56 |
| 16 | 1 | — | KOH | 100 | 10 | 92 |
| 17 | 0.5 | — | KOH | 100 | 6 | 63 |
| 18 | 0 | — | KOH | 100 | 24 | 21 |
| 19 | 1 | — | KOH | 100 | 24 | 43 |
| 20 | 1 | — | KOH | 100 | 24 | 30 |
| 21 | 1 | — | KOH | 100 | 10 | 0 |
| 22 | 1 | — | KOH | 100 | 10 | 0 |
| 22 | 1 | — | KOH | 100 | 10 | 90 |
| 23 | 1 | — | KOH | 100 | 12 | 87 |
Reaction conditions: nitrobenzene (0.5 mmol, except for entry 21), benzyl alcohol (0.5 mmol, except for entry 22), base (0.5 mmol, except for entry 6), solvent (3 mL, entries 7–13).
CuCl2·2H2O was used as a catalyst.
Isatin Schiff base-γ-Fe2O3 as a catalyst.
Without nitrobenzene.
Benzaldehyde was obtained as the only product in 60% yield.
Without benzyl alcohol.
Under O2.
Under Ar.
Tandem imines formation via auto-hydrogen transfer from alcohols to nitro compounds catalyzed by Cu-isatin Schiff base-γ Fe2O3
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| |||||
|---|---|---|---|---|---|
| Entry | R1 | R2 | Product | Time (h) | Yield (%) |
| 1 | C6H5 | C6H5 | a | 10 | 92 |
| 2 | C6H5 | 4-OH–C6H4 | b | 8 | 90 |
| 3 | C6H5 | 4-OMe–C6H4 | c | 8 | 84 |
| 4 | C6H5 | 4-Me–C6H4 | d | 9 | 87 |
| 5 | C6H5 | 4-Cl–C6H4 | e | 12 | 71 |
| 6 | 4-Me–C6H4 | C6H5 | f | 13 | 91 |
| 7 | 4-Me–C6H4 | 4-Cl–C6H4 | g | 12 | 68 |
| 8 | 4-Me–C6H4 | 4-OMe–C6H4 | h | 10 | 85 |
| 9 | 4-Me–C6H4 | 4-Me–C6H4 | i | 12 | 83 |
| 10 | 4-OMe–C6H4 | C6H5 | j | 12 | 75 |
| 11 | 4-OMe–C6H4 | 4-Cl–C6H4 | k | 13 | 72 |
| 12 | 4-OMe–C6H4 | 4-OMe–C6H4 | l | 11 | 84 |
| 13 | 4-OMe–C6H4 | 4-Me–C6H4 | m | 14 | 70 |
| 14 | C6H5 | CH3–CH2– | n | 10 | 72 |
| 15 | CH3–CH3–CH2– | C6H5 | o | 12 | 85 |
Reaction conditions: nitro compound (1 mmol), alcohol (1 mmol), KOH (1 mmol), solvent-free, catalyst (1 mol%), 100 °C. Melting points of the solid products were compared with the reported ones in the ESI (Table S1).
Fig. 7(a) Reaction mixture after adding EtOAc, (b) isolation of the catalyst by an external magnet (c) reusability of Cu-isatin Schiff base-γ-Fe2O3 in the reaction of nitrobenzene and benzyl alcohol at 100 °C in 10 h.
Fig. 8FT-IR spectrum of the Cu-isatin Schiff base-γ-Fe2O3 after six times reuse.
Fig. 9(a) TEM image, (b) FE-SEM image and (c) size distribution of the Cu-isatin Schiff base-γ-Fe2O3 after six times reuse.
Scheme 2A plausible mechanism for the tandem reaction catalyzed by Cu-isatin Schiff base-γ-Fe2O3.
Scheme 3Tandem reaction of 2-nitroaniline with benzyl alcohol under the optimized reaction conditions.
Comparison of catalytic activity of Cu-isatin Schiff base-γ-Fe2O3 with some reported catalysts for the auto-hydrogen transfer reactions of alcohols with nitro compounds
| Entry (ref.) | Catalyst (mol%) | Reaction conditions | Time (h) | Yield (%) |
|---|---|---|---|---|
| 1 (ref. | Pd/HT | Toluene, 130 °C | 24 | 35–93 |
| 2 (ref. | Ag-MCP-1 | Toluene, K2CO3, glycerol, 120 °C | 12 | 70–99 |
| 3 (ref. | Rh/Au (0.5) | Benzyl alcohol (solvent), Cs2CO3, 100 °C | 22 | 57 |
| 4 (ref. | Co–N–C/CNT@AC | Solvent free, N2 atmosphere, 160 °C | 18–42 | 12–100 |
| 5 (ref. | IrIII–AuI heterodimetallic complex (1) | Benzyl alcohol (solvent), Cs2CO3, 100 °C, aerobic condition | 15–22 | 4–99 |
| 6 (ref. | CoO | Toluene, | 15 | 57–87 |
| 7 (ref. | Ir–Pd heterodimetallic catalyst (2) | Benzyl alcohol (solvent), Cs2CO3, 110 °C | 3–20 | 16–92 |
| 8 (ref. | CuO–Fe3O4 (1.3) | Toluene, NaOH, 130 °C | 3 d | 58–84 |
| 9 (ref. | Pd/DNA (2.9) | Water, LiOH·H2O, 50 °C, N2 balloon | 24 | 51–95 |
| 10 (ref. | Au/Ag–Mo-NR | Toluene, K2CO3, glycerol, Ar, 120 °C | 24 | 60–98 |
| 11 (ref. | RuCl3 (3) | K2CO3, glycerol, N2 atmosphere | 24 | 72–99 |
| 12 (This work) | Cu-isatin Schiff base-γ-Fe2O3 (1) | Solvent-free, KOH, 100 °C | 8–14 | 65–92 |
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Cobalt nanoparticles modified with N-doped hierarchical porous carbon derived from biomass.
Au/Ag–Mo nano-rods.