| Literature DB >> 35425390 |
Nanxing Gao1, Yanshun Li1, Dawei Teng1.
Abstract
The structure of primary alkylated arenes plays an important role in the molecular action of drugs and natural products. The nickel/spiro-bidentate-pyox catalysed cross-electrophile coupling of aryl bromides and primary alkyl bromides was developed for the formation of the Csp2-Csp3 bond, which provided an efficient method for the synthesis of primary alkylated arenes. The reactions could tolerate functional groups such as ester, aldehyde, ketone, ether, benzyl, and imide. This journal is © The Royal Society of Chemistry.Entities:
Year: 2022 PMID: 35425390 PMCID: PMC8979266 DOI: 10.1039/d2ra00010e
Source DB: PubMed Journal: RSC Adv ISSN: 2046-2069 Impact factor: 3.361
Scheme 1Drugs with the structure of alkylated arenes.
Scheme 2Ni-catalysed cross-electrophile coupling between aryl bromides and primary alkyl bromides.
Scope of metal catalysts, ligands, and temperaturea,b
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|---|---|---|---|---|
| Entry | Metal | Ligand | Temperature | Yield (%) |
| 1 | NiBr2 | L1a | 80 °C | 67 |
| 2 | NiI2 | L1a | 80 °C | 62 |
| 3 | NiBr2·glyme | L1a | 80 °C | 56 |
| 4 | NiCl2 | L1a | 80 °C | Trace |
| 5 | Ni(acac)2 | L1a | 80 °C | NR |
| 6 | NiBr2 | L1b | 80 °C | 35 |
| 7 | NiBr2 | L1c | 80 °C | 25 |
| 8 | NiBr2 | L1d | 80 °C | 72 |
| 9 | NiBr2 | L2 | 80 °C | Trace |
| 10 | NiBr2 | L3 | 80 °C | 10 |
| 11 | NiBr2 | L4 | 80 °C | 55 |
| 12 | NiBr2 | L5 | 80 °C | 35 |
| 13 | NiBr2 | L1d | 60 °C | 49 |
| 14 | NiBr2 | L1d | 100 °C | 39 |
| 15 | — | L1d | 80 °C | 0 |
| 16 | NiBr2 | — | 80 °C | 0 |
Reaction conditions: 1a (0.40 mmol), 2a (0.20 mmol), Mn (0.60 mmol), ligand (0.02 mmol), metal (0.02 mmol), NMP (1 mL).
Isolated yield.
No reaction.
Optimization of reaction conditionsa,b
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|---|---|---|---|---|---|
| Entry | Solvent | Additive | Temperature | Reductant | Yield (%) |
| 1 | NMP | — | 80 °C | Mn | 72 |
| 2 | DMF | — | 80 °C | Mn | 40 |
| 3 | DMA | — | 80 °C | Mn | 66 |
| 4 | DMPU | — | 80 °C | Mn | 76 |
| 5 | DMPU | — | 80 °C | Mn | 78 |
| 6 | DMPU | — | 80 °C | Mn | 84 |
| 7 | DMPU | — | 80 °C | Mn | 80 |
| 8 | DMPU | — | 80 °C | Zn | 54 |
| 9 | DMPU | LiCl | 80 °C | Mn | 61 |
| 10 | DMPU | LiBr | 80 °C | Mn | 91 |
| 11 | DMPU | NaI | 80 °C | Mn | 77 |
| 12 | DMPU | MgCl2 | 80 °C | Mn | 26 |
| 13 | DMPU | LiBr | 80 °C | Mn | 80 |
| 14 | DMPU | LiBr | 80 °C | Mn | 90 |
Reaction conditions: 1a (0.40 mmol), 2a (0.20 mmol), additive (0.20 mmol), reductant (0.60 mmol), L1d (0.02 mmol), NiBr2 (0.02 mmol), solvent (1 mL).
Isolated yield.
x = 7.5.
x = 15.
x = 20.
Additive (0.15 mmol).
Additive (0.30 mmol).
Scope of aryl bromides in XECa,b
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|
Reaction conditions: 1 (0.40 mmol), 2a (0.20 mmol), LiBr (0.20 mmol), Mn (0.60 mmol), L1d (0.03 mmol), NiBr2 (0.03 mmol), DMPU (1 mL).
Isolated yield.
Scope of alkyl bromides in XECa,b
|
|
Reaction conditions: 1a (0.40 mmol), 2 (0.20 mmol), LiBr (0.20 mmol), Mn (0.60 mmol), L1d (0.03 mmol), NiBr2 (0.03 mmol), DMPU (1 mL).
Isolated yield.
Scheme 3Mechanistic studies.
Scheme 4The plausible mechanism.