| Literature DB >> 29997793 |
Kailong Zhu1, Michael P Shaver1, Stephen P Thomas1.
Abstract
The reduction and reductive addition (formal hydroamination) of functionalised nitroarenes is reported using a simple and bench-stable iron(iii) catalyst and silane. The reduction is chemoselective for nitro groups over an array of reactive functionalities (ketone, ester, amide, nitrile, sulfonyl and aryl halide). The high activity of this earth-abundant metal catalyst also facilitates a follow-on reaction in the reductive addition of nitroarenes to alkenes, giving efficient formal hydroamination of olefins under mild conditions. Both reactions offer significant improvements in catalytic activity and chemoselectivity and the utility of these catalysts in facilitating two challenging reactions supports an important mechanistic overlap.Entities:
Year: 2016 PMID: 29997793 PMCID: PMC6005157 DOI: 10.1039/c5sc04471e
Source DB: PubMed Journal: Chem Sci ISSN: 2041-6520 Impact factor: 9.825
Scheme 1Iron-catalysed reduction and radical reactions supported by Fe(iii) amine-bis(phenolate) catalysts and the extension of these reactions to the reduction and reductive addition of nitroarenes.
Optimisation of reaction condition
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| Entry | Cat. | Solvent | Silane | SM |
|
|
| 1 |
| MeCN | HSi(OEt)3 | 7 | 79 | 7 |
| 2 |
| MeCN | HSi(OEt)3 | Trace | >95(91) | Trace |
| 3 |
| PhMe | HSi(OEt)3 | 46 | 40 | 14 |
| 4 |
| THF | HSi(OEt)3 | 84 | 14 | 2 |
| 5 |
| EtOAc | HSi(OEt)3 | 51 | 35 | 14 |
| 6 |
| MeCN | PhSiH3 | 22 | 60 | 11 |
| 7 |
| MeCN | Ph2SiH2 | 55 | 26 | 10 |
| 8 |
| MeCN | Ph2MeSiH | >95 | 0 | 0 |
| 9 |
| MeCN | (Me3SiO)2MeSiH | >95 | 0 | 0 |
| 10 |
| MeCN | HSi(OEt)3 | Trace | >95 | Trace |
| 11 |
| MeCN | HSiMe(OEt)2 | Trace | 90 | 5 |
Unless otherwise noted, all reactions were carried out using 4.0 eq. of hydrosilane (1.20 mmol), 1.0 eq. of 4-nitroacetophenone (0.3 mmol), 0.02 eq. of catalyst 4 (0.006 mmol) in 0.3 mL solvent at 80 °C for 4 h.
Determined by 1H NMR using 1,3,5-trimethoxybenzene as internal standard.
Isolated yield.
3.0 eq. of triethoxysilane was used, 8 h.
0.05 eq. of catalyst was used.
Substrate scope of nitroarene reduction
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| Entry | Substrate | Product | Time | Yield |
| 1 |
|
| 4 h | 84% |
| 2 |
|
| 6 h | 84% |
| 3 |
|
| 6 h | 70% |
| 4 |
|
| 6 h | 82% |
| 5 |
|
| 8 h | 93% |
| 6 |
|
| 5 h | 91% |
| 7 |
|
| 5 h | 98%(85%) |
| 8 |
|
| 5 h | 94% |
| 9 |
|
| 5 h | 93% |
| 10 |
|
| 4 h | 80%(15%) |
| 11 |
|
| 6 h | 65%(30%) |
| 12 |
|
| 5 h | 82% |
| 13 |
|
| 8 h | 87% |
| 14 |
|
| 5 h | 90% |
| 15 |
|
| 3 h | 90% |
| 16 |
|
| 3 h | 85% |
| 17 |
|
| 6 h | 88% |
| 18 |
|
| 4 h | 98% |
| 19 |
|
| 6 h | 55% |
Unless otherwise noted, all reactions were carried out using 4.0 eq. of triethoxysilane (2.40 mmol), 1.0 eq. of nitro substrate (0.6 mmol), 0.02 eq. of catalyst (0.012 mmol) in 0.6 mL MeCN at 80 °C.
Isolated yield.
Using 4.0 eq. of HSiMe(OEt)2, 0.05 eq. of 4b, 5 h.
Starting material recovered.
Yield determined by 1H NMR using 1,3,5-trimethoxybenzene as internal standard.
0.04 eq of catalyst was used.
Scheme 2Selective nitro reduction in the synthesis of ‘real-world’ targets. [a] Reactions were carried out using 0.6 mmol of nitro compounds. [b] Isolated yield.
Scheme 3Formal hydroamination of olefins with catalyst 4b. [a] Reactions were carried out using 0.3 mmol of nitro compounds and 0.9 mmol of alkene. [b] 2.0 equiv. of silane, 2 h. [c] 1.0 equiv. of silane, 1 h. Isolated yield are shown in parentheses together with the donor olefin used.