| Literature DB >> 16542016 |
Manfred T Reetz1, Hongchao Guo.
Abstract
The previously reported concept of using mixtures of monodentate ligands in a combinatorial manner in order to influence enantio- or regioselectivity of transition metal catalyzed processes has been extended to include diastereoselectivity. Accordingly, 1,2- and 1,3-asymmetric induction in the Rh-catalyzed hydrogenation of a chiral allylic alcohol and a chiral homo-allylic alcohol has been studied by using mixtures of monodentate P-ligands. It was found that appropriate 1:1 mixtures of two different P-ligands enhance the degree of diastereoselectivity relative to the use of the respective pure ligands themselves. Here, as in the previous cases regarding enantio- or regioselectivity, this type of combinatorial catalysis leads to improved catalytic profiles without the need to prepare new ligands.Entities:
Year: 2005 PMID: 16542016 PMCID: PMC1399451 DOI: 10.1186/1860-5397-1-3
Source DB: PubMed Journal: Beilstein J Org Chem ISSN: 1860-5397 Impact factor: 2.883
Scheme 1Diastereoselective hydrogenation of the allylic alcohol 1.
| Entry | Ligand | Conversion (%) | Diastereoselectivity | Side product |
| 1 | P1/P1 | 100 | 10:1 | 47 |
| 2 | P2/P2 | 100 | 17:1 | 33 |
| 3 | P3/P3 | 100 | 14:1 | 51 |
| 4 | P4/P4 | 100 | 16:1 | 30 |
| 5 | P5/P5 | 100 | 10:1 | 49 |
| 6 | P6/P6 | 7 | 2:1 | 4 |
| 7 | P7/P7 | 78 | 1:1 | 8 |
| 8 | P8/P8 | 100 | 13:1 | 64 |
| 9 | P9/P9 | 100 | 16:1 | 58 |
| 10 | P10/P10 | 100 | 14:1 | 47 |
| 11 | P11/P11 | 93 | 1:1 | 7 |
| 12 | P12/P12 | 44 | 3:1 | 27 |
| 13 | P13/P13 | 100 | 17:1 | 15 |
| 14 | P14/P14 | 74 | 2:1 | 8 |
| 15 | P15/P15 | 100 | 12:1 | 1 |
| 16 | P16/P16 | 79 | 1.5:1 | 18 |
| 17 | P17/P17 | 100 | 5:1 | 98 |
| 18 | P18/P18 | 51 | 4:1 | 15 |
| 19 | P20/P20 | 64 | 4:1 | 24 |
| 20 | P22/P22 | 45 | 4:1 | 7 |
| 21 | P1/P12 | 100 | 19:1 | 45 |
| 22 | P1/P15 | 100 | 18:1 | 24 |
| 23 | P1/P22 | 100 | 17:1 | 45 |
| 24 | P2/P12 | 100 | 21:1 | 40 |
| 25 | P2/P22 | 100 | 19:1 | 33 |
| 26 | P4/P22 | 100 | 18:1 | 32 |
| 27 | P5/P22 | 100 | 18:1 | 47 |
| 28 | P6/P22 | 25 | 8:1 | 6 |
| 29 | P8/P22 | 100 | 20:1 | 65 |
| 30 | P9/P22 | 100 | 20:1 | 59 |
| 31 | P10/P15 | 100 | 20:1 | 30 |
| 32 | P10/P22 | 100 | 19:1 | 50 |
| 33 | P11/P17 | 56 | 27:1 | 48 |
| 34 | P12/P22 | 74 | 9:1 | 4 |
| 35 | P17/P20 | 100 | 7:1 | 70 |
| 36 | P17/P22 | 100 | 8:1 | 56 |
Diastereoselective hydrogenation of the homo-allylic alcohol 5.
| Entry | Ligand | Conversion (%) | Diastereoselectivity |
| 1 | P1 | 100 | 1:1.4 |
| 2 | P2 | 100 | 1:1.5 |
| 3 | P3 | 100 | 1:1 |
| 4 | P4 | 100 | 1:1.8 |
| 5 | P5 | 100 | 1.2:1 |
| 6 | P6 | 100 | 7:1 |
| 7 | P7 | 6 | 3:1 |
| 8 | P8 | 100 | 2:1 |
| 9 | P9 | 100 | 1:1 |
| 10 | P10 | 100 | 1:1 |
| 11 | P11 | 2 | 2:1 |
| 12 | P12 | 100 | 7:1 |
| 13 | P13 | 100 | 1.2:1 |
| 14 | P14 | 1 | 1.6:1 |
| 15 | P15 | 100 | 2.6:1 |
| 16 | P16 | 100 | 9:1 |
| 17 | P17 | 32 | 3:1 |
| 18 | P19 | 89 | 3:1 |
| 19 | P21 | 2 | 6:1 |
| 20 | P22 | 100 | 10:1 |
| 21 | P23 | 100 | 3:1 |
| 22 | P3/P19 | 100 | 1:2 |
| 23 | P4/P19 | 100 | 1:2.6 |
| 24 | P4/P23 | 100 | 1:5 |
| 25 | P5/P19 | 100 | 1:1.8 |
| 26 | P7/P21 | 26 | 18:1 |
| 27 | P8/P19 | 100 | 1:1.8 |
| 28 | P9/P19 | 100 | 1:2 |
| 29 | P9/P23 | 100 | 1:5 |
| 30 | P10/P19 | 100 | 1:2 |
| 31 | P10/P23 | 100 | 1:5 |
| 32 | P11/P14 | 14 | 6:1 |
| 33 | P11/P15 | 100 | 7:1 |
| 34 | P14/P15 | 86 | 9:1 |
| 35 | P14/P19 | 77 | 5:1 |
| 36 | P17/P19 | 100 | 1:3 |