| Literature DB >> 23847437 |
Navid Dastbaravardeh1, Michael Schnürch, Marko D Mihovilovic.
Abstract
The ruthenium(II)-catalyzedEntities:
Keywords: Cleavage reactions; C–H activation; Homogeneous catalysis; Isotope effects; Reaction mechanisms
Year: 2013 PMID: 23847437 PMCID: PMC3698694 DOI: 10.1002/ejoc.201300004
Source DB: PubMed Journal: European J Org Chem ISSN: 1099-0690
Optimization studies for the direct arylation of benzylic amine 1a[a]
| Entry | Catalyst | Ligand | X | Conv. | 3a/4 | Yield of3a |
|---|---|---|---|---|---|---|
| 1 | [RuCl2( | – | Br | 59 | 4.0 | 34 |
| 2 | RuCl3 | – | Br | 28 | 3.5 | 17 |
| 3 | RuCl2(PPh3)3 | – | Br | 47 | 2.4 | 27 |
| 4 | [RhCl(cod)]2 | – | Br | 8 | – | 5 |
| 5 | [RhCl(C2H4)]2 | – | Br | 8 | – | 4 |
| 6 | [RhCp*Cl2]2 | – | Br | 6 | – | 4 |
| 7 | Rh4(CO)12 | – | Br | 0 | – | 0 |
| 8 | [RuCl2( | KOPiv | Br | 98 | 6.0 | 75 |
| 9 | RuCl3 | KOPiv | Br | 0 | – | 0 |
| 10 | RuCl2(PPh3)3 | KOPiv | Br | 0 | – | 0 |
| 11 | [RuCl2( | PPh3 | Br | 85 | 4.6 | 51 |
| 12 | RuCl3 | PPh3 | Br | 0 | – | 0 |
| 13 | RuCl2(PPh3)3 | PPh3 | Br | 37 | 2.2 | 20 |
| 14 | [RuCl2( | KOPiv | Cl | 8 | – | 4 |
| 15 | [RuCl2( | KOPiv | I | 88 | 30 | 57 |
Reaction conditions: 1a (0.5 mmol), PhX (0.75 mmol), catalyst (2.5 mol-%), KOPiv (30 mol-%) or PPh3 (5 mol-%), K2CO3 (1.5 mmol), and PhMe (2 mL).
Conversion determined by GC analysis with respect to 1a.
Ratio based on GC analysis.
Yield determined by GC analysis with respect to 1a (dodecane as internal standard).
Scope of arylation of benzylic amine 1.[a]
| Entry | 1 | R | X | Ar | 3 | Conv. | Yield |
|---|---|---|---|---|---|---|---|
| 1 | Me | Br | C6H5 | 96 | 69 | ||
| 2 | Me | I | C6H5 | 100 | 48 | ||
| 3 | Me | Br | 2-Me-C6H4 | 18 | n.i. | ||
| 4 | Me | Br | 1-naphthyl | 14 | n.i. | ||
| 5 | Me | Br | 3-Me-C6H4 | 98 | 55 | ||
| 6 | Me | Br | 3-MeO-C6H4 | 97 | 60 | ||
| 7 | Me | Br | 3-Cl-C6H4 | 60 | 37 | ||
| 8 | Me | Br | 4-Me-C6H4 | 98 | 65 | ||
| 9 | Me | Br | 4- | 96 | 64 | ||
| 10 | Me | Br | 4- | 98 | 67 | ||
| 11 | Me | Br | 4-MeO-C6H4 | 95 | 63 | ||
| 12 | Me | I | 4-MeO-C6H4 | 98 | 61 | ||
| 13 | Me | Br | 4-Me2N-C6H4 | 94 | 50 | ||
| 14 | Me | Br | 4-F-C6H4 | 92 | 61 | ||
| 15 | Me | I | 4-F-C6H4 | 97 | 55 | ||
| 16 | Me | Br | 4-Cl-C6H4 | 98 | 51 | ||
| 17 | Me | Br | 4-EtO2C-C6H4 | 72 | 33 | ||
| 18 | Me | Br | 4-MeOC-C6H4 | 15 | n.i. | ||
| 19 | Me | Br | 4-O2N-C6H4 | 0 | – | ||
| 20 | Me | Br | 4-NC-C6H4 | 0 | – | ||
| 21 | Me | Br | 3-pyridyl | 0 | – | ||
| 22 | Me | Br | 2-thienyl | 0 | – | ||
| 23 | C6H5 | Br | C6H5 | 98 | 70 | ||
| 24 | C6H5 | Br | 3-Me-C6H4 | 97 | 68 | ||
| 25 | C6H5 | Br | 3-MeO-C6H4 | 95 | 64 | ||
| 26 | C6H5 | Br | 4-Me-C6H4 | 97 | 67 | ||
| 27 | C6H5 | Br | 4- | 98 | 72 | ||
| 28 | C6H5 | Br | 4- | 97 | 69 | ||
| 29 | C6H5 | Br | 4-Cl-C6H4 | 81 | 59 | ||
| 30 | C6H5 | Br | 4-EtO2C-C6H4 | 64 | 42 | ||
| 31 | C6H5 | Br | 4-MeOC-C6H4e] | 65 | 41 | ||
| 32 | C6H5 | Br | 4-O2N-C6H4 | 0 | – | ||
| 33 | C6H5 | Br | 4-NC-C6H4 | 0 | – | ||
Reaction conditions: 1 (0.5 mmol), ArX (0.75 mmol), [RuCl2(p-cymene)]2 (2.5 mol-%), KOPiv (30 mol-%), K2CO3 (1.5 mmol), and PhMe (2 mL).
Conversion determined by GC analysis with respect to 1.
n.i. = not isolated.
130 °C.
150 °C.
Influence of the substituent on the benzylic group for the Ru-catalyzed direct arylation[a]
| Entry | 1 | Y | 3 | Conv. | Yield |
|---|---|---|---|---|---|
| 1 | OMe | 49 | 28 | ||
| 2 | O | 75 | 43 | ||
| 3 | Me | 77 | 48 | ||
| 4 | H | 96 | 69 | ||
| 5 | F | 85 | 59 | ||
| 6 | CF3 | 97 | 57 | ||
| 7 | CO2Me | 88 | 57 | ||
Reaction conditions: 1 (0.5 mmol), PhBr (0.75 mmol), [RuCl2(p-cymene)]2 (2.5 mol-%), KOPiv (30 mol-%), K2CO3 (1.5 mmol), and PhMe (2 mL).
Conversion determined by GC analysis with respect to 1.
Competitive experiments for the Ru-catalyzed direct arylation reaction[a]
| Entry | Y | H/Y |
|---|---|---|
| 1 | OMe | 2 |
| 2 | O | 1.3 |
| 3 | Me | 1.1 |
| 4 | F | 1.1 |
| 5 | CF3 | 0.9 |
| 6 | CO2Me | 1.8 |
Reaction conditions: 1a (0.5 mmol), substituted amine (0.5 mmol), PhBr (0.5 mmol), [RuCl2(p-cymene)]2 (2.5 mol-%), KOPiv (30 mol-%), K2CO3 (1.5 mmol), and PhMe (2 mL).
Ratio determined by GC analysis.
Scheme 1Direct arylation of 5, 6, and 7a.
Scheme 2Direct arylation of N-substituted THIQ.
Scheme 3Hypothesis for imine formation and ruthenium(II)-catalyzed direct arylation of 12.
Scheme 4Kinetic measurements for the ruthenium(II)-catalyzed direct arylation of 1a and 12.
Ru-catalyzed arylation of 1a under different atmospheres[a]
| Entry | Atmosphere | Conv. | 3a/4 | Yield |
|---|---|---|---|---|
| 1 | argon | 96 | 6.0 | 75 (69) |
| 2 | air | 79 | 4.0 | 56 |
| 3 | CO | 0 | – | 0 |
| 4 | H2 | 53 | 8.3 | 37 |
| 5 | argon (microwave) | 92 | 5.1 | 66 |
Reaction conditions: 1a (0.5 mmol), PhBr (0.75 mmol), [RuCl2(p-cymene)]2 (2.5 mol-%), KOPiv (30 mol-%), K2CO3 (1.5 mmol), and PhMe (2 mL).
Conversion determined by GC analysis with respect to 1a.
Ratio determined by GC.
Yield determined by GC analysis with respect to 1a (dodecane as internal standard).
Number in parentheses is yield of 3a.
Microwave conditions: 180 °C for 2.5 h.
Scheme 5Proposed mechanism for the ruthenium(II)-catalyzed reaction.
Optimization studies for the direct arylation of benzylic amine 1a with aryl chlorides[a]
| Entry | Ligand | Additive | Conv. | 3a/4 | Yield of3a |
|---|---|---|---|---|---|
| 1 | – | – | 34 | 1.8 | 12 |
| 2 | KOPiv | – | 8 | – | 4 |
| 3 | AdCO2K | – | 7 | – | 4 |
| 4 | PPh3 | – | 81 | 1.9 | 38 |
| 5 | P(o-Tol)3 | – | 64 | 2.3 | 32 |
| 6 | P(4-OMe-Ph)3 | – | 61 | 2.5 | 33 |
| 7 | P(4-Cl-Ph)3 | – | 50 | 1.6 | 19 |
| 8 | P(Cy)3 | – | 60 | 1.5 | 28 |
| 9 | XPhos | – | 62 | 2.1 | 30 |
| 10 | JohnPhos | – | 51 | 2.9 | 26 |
| 11 | RuPhos | – | 56 | 1.4 | 23 |
| 12 | DavePhos | – | 66 | 1.5 | 29 |
| 13 | BINAP | – | 9 | 2.6 | 4 |
| 14 | IMes | – | 45 | 0.8 | 11 |
| 15 | PPh3 | 17 | > 100 | 12 | |
| 16 | PPh3 | 3-pentanol | 26 | > 100 | 18 |
| 17 | PPh3 | cyclopentanol | 9 | > 100 | 6 |
| 18 | PPh3 | cyclohexanol | 49 | > 100 | 38 |
| 19 | PPh3 | cyclohexanol | 93 | 12 | 79 (70) |
Reaction conditions: 1a (0.5 mmol), PhCl (1.5 mmol), [RuCl2(p-cymene)]2 (5 mol-%), ligand (10 mol-%), additive (0.5 mmol), K2CO3 (1.5 mmol), and PhMe (2 mL).
Conversion determined by GC analysis with respect to 1a.
Ratio based on GC analysis.
Yield determined by GC analysis with respect to 1a (dodecane as internal standard).
No 4 detected.
160 °C for 30 h in o-xylene.
Number in parentheses is yield of 3a.
Scheme 6Role of secondary alcohol.
Scheme 7Direct arylation of 1a with aryl triflate and tosylate.
Scope of arylation of benzylic amine 1 with aryl chlorides[a]
| Entry | 1 | R | Ar | 3 | Conv. | Yield |
|---|---|---|---|---|---|---|
| 1 | Me | C6H5 | 93 | 70 | ||
| 2 | Me | 3-Me-C6H4 | 95 | 72 | ||
| 3 | Me | 4-Me-C6H4 | 93 | 79 | ||
| 4 | Me | 4-MeO-C6H4 | 88 | 64 | ||
| 5 | Me | 4-F-C6H4 | 76 | 56 | ||
| 6 | Me | 4-F3C-C6H4 | 79 | 30 | ||
| 7 | Me | 4-MeO2C-C6H4 | 23 | n.i. | ||
| 8 | C6H5 | C6H5 | 60 | 48 | ||
| 9 | C6H5 | 3-Me-C6H4 | 68 | 58 | ||
| 10 | C6H5 | 3-MeO-C6H4 | 72 | 61 | ||
| 11 | C6H5 | 4-Me-C6H4 | 58 | 39 | ||
| 12 | C6H5 | 4- | 69 | 55 | ||
| 13 | C6H5 | 4- | 55 | 47 | ||
| 14 | C6H5 | 4-MeCO-C6H4 | 38 | n.i. | ||
| 15 | C6H5 | 4-MeO2C-C6H4 | 16 | n.i. | ||
| 16 | C6H5 | 4-O2N-C6H4 | 0 | 0 | ||
Reaction conditions: 1 (0.5 mmol), ArCl (1.5 mmol), [RuCl2(p-cymene)]2 (5 mol-%), PPh3 (10 mol-%), cyclohexanol (0.5 mmol), K2CO3 (1.5 mmol), and PhMe (2 mL).
Conversion determined by GC analysis with respect to 1.
n.i. = not isolated.
Scheme 8KIE control experiment with 19.