| Literature DB >> 32595781 |
Shrikant D Tambe1, Kwan Hong Min1, Naeem Iqbal1, Eun Jin Cho1.
Abstract
A simple photocatalytic method was developed for the synthesis of unsymmetrical 1,2-diamines by the unprecedented reductive coupling of N-benzylidene-[1,1'-biphenyl]-2-amines with an aliphatic amine. The presence of a phenyl substituent in the aniline moiety of the substrate was critical for the reactivity. The reaction proceeded via radical-radical cross-coupling of α-amino radicals generated by proton-coupled single-electron transfer in the presence of an Ir photocatalyst. On the other hand, symmetrical 1,2-diamines were selectively produced from the same starting materials by the judicious choice of the reaction conditions, showcasing the distinct reactivity of N-benzylidene-[1,1'-biphenyl]-2-amines. The developed method can be employed for the synthesis of various bulky vicinal diamines, which are potential ligands in stereoselective synthesis.Entities:
Keywords: 1,2-diamine; diversity; imine; photocatalysis; visible light
Year: 2020 PMID: 32595781 PMCID: PMC7308614 DOI: 10.3762/bjoc.16.114
Source DB: PubMed Journal: Beilstein J Org Chem ISSN: 1860-5397 Impact factor: 2.883
Scheme 1Photocatalytic transformations of imines.
Reaction optimization.a
| entry | photocatalyst | variation | solvent | yield (%)b | |
| 1 | [Ru(bpy)3]Cl2⋅6H2O | – | CH3CN | 12 | 0 |
| 2 | [Ru(bpz)3](PF6)2 | – | CH3CN | 0 | 0 |
| 3 | Ir(dFppy)3 | – | CH3CN | 0 | 0 |
| 4 | Ir(ppy)3 | – | CH3CN | 3 | 25 |
| 5 | [Ir(dF(CF3)ppy)2(dtbpy)]PF6 | – | CH3CN | 38 | 5 |
| 6 | [Ir(dtbbpy)(ppy)2]PF6 | – | CH3CN | 60 | 11 |
| 7 | TTPP | – | CH3CN | 0 | 0 |
| 8 | crystal violet | – | CH3CN | 0 | 0 |
| 9 | eosin-Y | – | CH3CN | 38 | 0 |
| 10 | [Ir(dtbbpy)(ppy)2]PF6 | Cy2NMe (1 equiv) | CH3CN | 14 | 55 |
| 11 | [Ir(dtbbpy)(ppy)2]PF6 | no Cy2NMe | CH3CN | 0 | trace |
| 12 | no catalyst | – | CH3CN | 0 | 0 |
| 13 | [Ir(dtbbpy)(ppy)2]PF6 | no light | CH3CN | 0 | 0 |
| 14 | [Ir(dtbbpy)(ppy)2]PF6 | – | DCM | 0 | 16 |
| 15 | [Ir(dtbbpy)(ppy)2]PF6 | – | DMF | 72 (71) | 7 |
| 16 | [Ir(dtbbpy)(ppy)2]PF6 | – | DCE | 22 | 11 |
| 17 | [Ir(dtbbpy)(ppy)2]PF6 | – | DMSO | 37 | 6 |
| 18 | [Ir(dtbbpy)(ppy)2]PF6 | – | dioxane | 50 | 13 |
| 19 | [Ir(dtbbpy)(ppy)2]PF6 | – | TFE | 0 | 20 |
| 20 | [Ir(dtbbpy)(ppy)2]PF6 | – | acetone | 22 | trace |
| 21 | [Ir(dtbbpy)(ppy)2]PF6 | – | EtOAc | 36 | 8 |
| 22 | [Ir(dtbbpy)(ppy)2]PF6 | – | CH3OH | 4 | 75 (75) |
| 23 | [Ir(dtbbpy)(ppy)2]PF6 | – | DMF/CH3OH (1:1) | 35 | 29 |
| 24 | [Ir(dtbbpy)(ppy)2]PF6 | – | DMF/H2O (1:1) | 25 | 10 |
| 25 | [Ir(dtbbpy)(ppy)2]PF6 | – | CH3CN/H2O (1:1) | 15 | 14 |
aReaction conditions: 1a (0.1 mmol), under argon atmosphere. bThe yields were determined by 1H NMR spectroscopy using 1,3,5-trimethoxybenzene as the internal standard, and the isolated yields are mentioned in parentheses.
Scheme 2Substrate scope for the radical cross-couplings. Reaction conditions: 1 (0.3 mmol), under argon atmosphere, isolated yields. aThe debrominated product was also detected, and the yield represents the mixture of the brominated and debrominated product.
Scheme 3Substrate scope for the homocoupling. Reaction conditions: 1 (0.3 mmol), under argon atmosphere, isolated yield. aThe debrominated product was also detected, and the yield represents the mixture of the brominated and debrominated product.
Scheme 4Reduction of the imine 1a to the amine 4a.
Scheme 5Proposed mechanism.