| Literature DB >> 35515762 |
Senling Guan1, Yue Chen1, Hongjie Wu1, Runsheng Xu1.
Abstract
An iron-catalyzed tandem reaction of C-Se bond coupling/selenosulfonation was developed. Starting from sample indols and benzeneselenols versatile biologically active 2-benzeneselenonyl-1H-indoles derivatives were efficiently synthesized. The reaction mechanism was studied by the deuterium isotope study and in situ ESI-MS experiments. This protocol features mild reaction conditions, wider substrate scope and provides an economical approach toward C(sp2)-Se bond formation. This journal is © The Royal Society of Chemistry.Entities:
Year: 2020 PMID: 35515762 PMCID: PMC9055526 DOI: 10.1039/d0ra05922f
Source DB: PubMed Journal: RSC Adv ISSN: 2046-2069 Impact factor: 4.036
Optimization of the reaction conditionsa
|
| |||||
|---|---|---|---|---|---|
| Entry | Fe catalyst | Base | Additive | 1a : 2a | Yield |
| 1 | FeCl2 | DBU | O2 | 1 : 1 | 0 |
| 2 | FeBr2 | DBU | O2 | 1 : 1 | 0 |
| 3 | Fe(OAc)2 | DBU | O2 | 1 : 1 | 19 |
| 4 | Fe2(SO4)3 | DBU | O2 | 1 : 1 | 23 |
| 5 | FeCl3 | DBU | O2 | 1 : 1 | 67 |
| 6 | FeCl3 | Imidazole | O2 | 1 : 1 | 36 |
| 7 | FeCl3 | Piperidine | O2 | 1 : 1 | 49 |
| 8 | FeCl3 |
| O2 | 1 : 1 | 46 |
| 9 | FeCl3 | Tri- | O2 | 1 : 1 | 38 |
| 10 | FeCl3 | DABCO | O2 | 1 : 1 | 57 |
| 11 | FeCl3 | DBU | AgO | 1 : 1 | 0 |
| 12 | FeCl3 | DBU | H2O2 | 1 : 1 | 38 |
| 13 | FeCl3 | DBU | CH3COOOH | 1 : 1 | 42 |
| 14 | FeCl3 | DBU | O2 | 1 : 1.5 | 83 |
| 15 | FeCl3 | DBU | O2 | 1 : 1.5 | 65 |
| 16 | FeCl3 | DBU | O2 | 1 : 1.5 | 82 |
| 17 | FeCl3 | DBU | O2 | 1 : 1.5 | 64 |
| 18 | FeCl3 | DBU | O2 | 1 : 1.5 | 77 |
| 19 | FeCl3 | DBU | O2 | 1 : 1.5 | 23 |
Unless otherwise noted, reactions conditions were 1a (0.5 mmol), 2a (0.5 mmol), Fe catalyst (5 mol%), base (2 equiv.), additive (2 equiv or under atmosphere), 1,4-dioxane (4 mL), 80 °C for 10 h.
Isolated yield.
70 °C.
90 °C.
In CHCl3.
In DMF.
Solvents not been dried.
Iron-catalyzed tandem reaction of C–Se bond coupling/selenosulfonation of indols with benzeneselenolsa
|
| ||||
|---|---|---|---|---|
| Entry | R | R1 | 3 | Yield |
| 1 | H | H |
| 83 |
| 2 | H | 4-Me |
| 84 |
| 3 | H | 4- |
| 87 |
| 4 | H | 4-OMe |
| 92 |
| 5 | H | 4-F |
| 78 |
| 6 | H | 4-Cl |
| 81 |
| 7 | H | 4-Br |
| 83 |
| 8 | H | 4-CF3 |
| 75 |
| 9 | H | 4-NO2 |
| 69 |
| 10 | H | Naphthyl |
| 79 |
| 11 | 5-Me | 4-Me |
| 75 |
| 12 | 7-Me | 4-Me |
| 76 |
| 13 | 4-OMe | 4-Me |
| 74 |
| 14 | 5-OMe | 4-Me |
| 72 |
| 15 | 7-OMe | 4-Me |
| 67 |
| 16 | 4-OCH2Ph | 4-Me |
| 66 |
| 17 | 6-Cl | 4-Me |
| 90 |
| 18 | 7-Cl | 4-Me |
| 91 |
| 19 | 3-Me | 4-Me |
| 65 |
Unless otherwise noted, reaction conditions were 1 (0.5 mmol), 2 (0.75 mmol), FeCl3 (5 mol%), DBU (2 equiv.), under a O2 atmosphere, 1,4-dioxane (5 mL), 80 °C for 10 h.
Isolated yield.
Iron-catalyzed tandem reaction of C–Se bond coupling/selenosulfonation of N-methylpyrrole with benzeneselenolsa
|
| ||||
|---|---|---|---|---|
| Entry | R3 | R1 | 5 | Yield |
| 1 | H | H |
| 76 |
| 2 | H | 4-Me |
| 79 |
| 3 | H | 4- |
| 78 |
| 4 | H | 4-F |
| 69 |
| 5 | H | 4-Cl |
| 65 |
| 6 | H | 4-Br |
| 66 |
| 7 | H | 3-Br |
| 68 |
| 8 | H | 4-CF3 |
| 59 |
| 9 | H | Naphthyl |
| 70 |
Unless otherwise noted, reaction conditions were 4 (0.5 mmol), 2 (0.75 mmol), FeCl3 (5 mol%), DBU (2 equiv.), under a O2 atmosphere, 1,4-dioxane (5 mL), 80 °C for 10 h.
Isolated yield.
Scheme 1Preliminary data of the reaction mechanism.
Scheme 2The kinetic deuterium isotope effects.
Scheme 3The in situ ESI-MS spectras of iron-catalyzed direct C(sp2)–H bond activation/C–Se cross coupling ((a) for the mode reaction, (b) for the 18O2 deuterium labeling reaction).
Scheme 4Proposed mechanism.