| Literature DB >> 26166880 |
Maria C Schwarz1, Navid Dastbaravardeh1, Karl Kirchner1, Michael Schnürch1, Marko D Mihovilovic1.
Abstract
ABSTRACT: A Ru-catalyzed mono-arylation in α-position of saturated cyclic amines is reported employing a C-H activation protocol. Substitution of the pyridine directing group with a bulky group, e.g., trifluoromethyl in the 3-position, proved to be crucial to avoid bis-arylation. This highly selective transformation can be performed with different amines and arylboronate esters. Additionally, the directing group can be cleaved, taking advantage of an unprecedented detrifluoromethylation reaction.Entities:
Keywords: Arylation; Catalysis; C–H activation; Detrifluoromethylation; Heterocycles; Metal carbonyls
Year: 2013 PMID: 26166880 PMCID: PMC4494768 DOI: 10.1007/s00706-013-0947-1
Source DB: PubMed Journal: Monatsh Chem ISSN: 0026-9247 Impact factor: 1.451


Synthesis of substrates for direct arylation
aReaction conditions: 1 (1 equiv.), saturated amine 2 (2 equiv.), K2CO3 (2 equiv.), acetonitrile
b3 equiv. saturated amine
cMicrowave heating
dRound-bottom flask, reflux conditions
eClosed vial, heating block
Optimization of the reaction conditionsa
| Entry | Co-catalyst | Mol% | Conversion/%b | GC yield/%c |
|---|---|---|---|---|
| 1 | – | – | 53 | 39 |
| 2 | PdCl2 | 1 | 53 | 43 |
| 3 | PdCl2 | 3 | 70 | 54 |
| 4 | PdCl2 | 5 | 65 | 49 |
| 5 | FeCl2 | 1 | 72 | 54 |
| 6 | FeCl2 | 2 | 75 | 61 |
| 7 | FeCl2 | 5 | 75 | 63 |
| 8 | FeCl3 | 1 | 73 | 58 |
| 9 | FeCl3 | 2 | 77 | 58 |
| 10 | FeCl3 | 5 | 71 | 49 |
| 11 | CuCl2·2H2O | 1 | 77 | 63 |
| 12 | CuCl2·2H2O | 2 | 72 | 61 |
| 13 | CuCl2·2H2O | 5 | 69 | 43 |
| 14 | CuSO4·5H2O | 1 | 74 | 59 |
| 15 | CuSO4·5H2O | 2 | 82 | 70 |
| 16 | CuSO4·5H2O | 5 | 87 | 69 |
aReaction conditions: 3a (0.5 mmol), 5a (2 mmol), Ru3(CO)12 (7 mol%), co-catalyst, 2,2-dimethylpropane-1,3-diol (0.25 mmol), 0.5 cm3 o-xylene, 135 °C, stirred for 36 h under argon conditions in an open vial
bConversion based on GC analysis with respect to 3a and 4a (dodecane as internal standard)
cYield determined by GC analysis with respect to 4a (dodecane as internal standard) using a calibration curve
Scope of mono-arylations with different arylboronate esters 5 a
| Entry | Ar | Product | Yield/%b |
|---|---|---|---|
| 1 | C6H5 |
| 60 |
| 2 | 4-Me-C6H4 |
| 47 |
| 3 | 4- |
| 50 |
| 4 | 4-F-C6H4 |
| 43 |
| 5 | 4-Cl-C6H4 |
| 34 |
| 6 | 4-MeO-C6H4 |
| 16c |
| 7 | 4-CF3-C6H4 |
| 40 |
| 8 | 4-CN-C6H4 |
| n.i. |
| 9 | 4-NO2-C6H4 |
| n.i. |
| 10 | 3-Me-C6H4 |
| 49 |
| 11 | 3-Cl-C6H4 |
| 39 |
| 12 | 2-Me-C6H4 |
| n.i. |
aReaction conditions: 3a (0.5 mmol), 5 (2 mmol), Ru3(CO)12 (7 mol%), CuSO4·5H2O (2 mol%), 1,3-propanediol (0.25 mmol), 0.5 cm3 o-xylene, 140 °C, stirred for 24 h under argon conditions in an open vial
bIsolated yield after flash column chromatography; those examples with low or no conversion were not isolated (n.i.)
cBis-arylated product was obtained in addition; additional purification by preparative TLC
Scope of mono-arylations with different saturated cyclic amines 3 a
aReaction conditions: 3 (0.5 mmol), 5a (2 mmol), Ru3(CO)12 (7 mol%), CuSO4·5H2O (2 mol%), 1,3-propanediol (0.25 mmol), 0.5 cm3 o-xylene, 140 °C, stirred for 24 h under argon conditions in an open vial
bIsolated yield after flash column chromatography; those examples with low or no conversion were not isolated (n.i.)
cBis-arylated product was obtained in addition
Fig. 1Optimized PBE1PBE geometry of the equilibrium structure of 3a

