| Literature DB >> 36132810 |
Surjyakanta Rana1,2, Jose J Velázquez2, S B Jonnalagadda1.
Abstract
Air-stable Ni nanoparticles (with particle size ∼ 11 nm) supported on reduced graphene oxide [Ni(0)@RGO] was prepared by a simple and easy procedure. We previously described the Kumada-Corriu C-C cross-coupling reaction between iodo-arenes and Grignard reagents with Ni(0)RGO as a stable and efficient catalyst. This Ni(0)RGO catalyst gave an excellent yield (92%) and good recyclability (up to the 5th cycle). This communication confirms that the catalyst shows superior efficacy for the C-S coupling reaction, similar to that for the Kumada-Corriu C-C cross-coupling reaction. A catalytic experiment with the Ni(0)@RGO recycled material was also performed. HRTEM study of the reused material after the C-S coupling reaction confirmed the retention of the original (fresh) catalyst structure. It is reusable up to the 7th cycle without any activity loss. This journal is © The Royal Society of Chemistry.Entities:
Year: 2022 PMID: 36132810 PMCID: PMC9419819 DOI: 10.1039/d2na00316c
Source DB: PubMed Journal: Nanoscale Adv ISSN: 2516-0230
Fig. 1XPS spectrum of the Ni 2p region of the Ni(0)@RGO material.
Catalytic activity toward the C–S cross-coupling reactiona
| Sl no. | Catalyst | Time (h) | Temp. (°C) | Yield (%) |
|---|---|---|---|---|
| 1 | Without catalyst | 3 | 90 | — |
| 2 | GO | 3 | 90 | 13 |
| 3 | Ni(0)RGO | 3 | 90 | 94 |
Iodobenzene (1 mmol), thiophenol (1.1 mmol), K2CO3 (2 mmol) and DMF (3 mL) at 90 °C for 3 h.
Optimisation of the C–S coupling reaction with different bases under similar conditionsa
| Sl no. | Base | Time (h) | Temp. (°C) | Yield (%) |
|---|---|---|---|---|
| 1 | K2CO3 | 3 | 90 | 94 |
| 2 | K3PO4 | 3 | 90 | 87 |
| 3 | KOH | 3 | 90 | 85 |
| 4 | Cs2CO3 | 3 | 90 | 91 |
Iodobenzene (1 mmol), thiophenol (1.1 mmol) and DMF (3 mL) at 90 °C for 3 h.
Ni(0)@RGO catalysed C–S coupling reactiona between different aryl iodides and thiol substituents
| Sl no. | Reactant-I | Reactant-II | Product | Yield (%) |
|---|---|---|---|---|
| 1 | X = I | X = SH | — | 94 |
| 2 | X = I, Y= OCH3 | X = SH | Y = OCH3 | 61 |
| 3 | X = I, Y= F | X = SH | Y = F | 81 |
| 4 | X = I, Y= Br | X = SH | Y = Br | 89 |
| 5 | X = I, Y= CH3 | X = SH | Y = CH3 | 69 |
| 6 | X = I, Y= NO2 | X = SH | Y = NO2 | 91 |
| 7 | X = Cl | X = SH | — | 53 |
| 8 | X = F | X = SH | — | 31 |
Different substituents of aryl iodide (1 mmol), thiophenol (1.1 mmol), K2CO3 (2 mmol) and DMF (3 mL) at 90 °C for 3 h.
Fig. 2Optimisation of reaction time using the Ni(0)@RGO material.
Fig. 3Effect of different reaction temperatures on the C–S coupling reaction with the Ni(0)@RGO material.
The effectiveness of the present work compared with reported results
| Catalyst | Time (h) | Temp. (°C) | Yield (%) | Ref. |
|---|---|---|---|---|
| Cu-grafted furfural functionalized mesoporous material | 8 | 100 | 85.2 |
|
| Ni catalyst | 3 | 100 | 92 |
|
| CuI nanoparticles | 24 | 50 | 93 |
|
| Ni(0)RGO | 3 | 90 | 94 | Current work |
Fig. 4Reusability result of the Ni(0)@RGO material for the C–S coupling reaction.
Scheme 1Schematic presentation of the C–S coupling reaction.
Fig. 5HRTEM study of the Ni(0)@RGO material after the first run of the C–S coupling reaction.