| Literature DB >> 27625043 |
Hong-Yu Wang1, Chang-Wu Zheng1, Zhuo Chai1, Jia-Xing Zhang1, Gang Zhao1.
Abstract
Over the past few decades, enantioselective phosphine organocatalysis has evolved rapidly into a highly efficient catalytic strategy for a range of useful reactions. However, as restricted by the traditional catalytic modes, some important reactions, such as asymmetric Strecker-type reactions, have thus far been out of reach of this strategy. Reported herein is an application of enantioselectiveEntities:
Year: 2016 PMID: 27625043 PMCID: PMC5027285 DOI: 10.1038/ncomms12720
Source DB: PubMed Journal: Nat Commun ISSN: 2041-1723 Impact factor: 14.919
Figure 1Evolution of the organophosphine catalysis to expand the reaction scope.
(a) From general activation mode to dual-reagent catalysis; (b) dual-reagent catalyst as a Brønsted base; and (c) dual-reagent catalysis as a Lewis base in the cyanation of imines with Me3SiCN.
Control experiments of the racemic cyanation of the ketoimine derived from isatin*.
Catalyst evaluation*.
The scope of the asymmetric cyanation of ketoimines*.
The scope of the asymmetric cyanation of azomethine imines*.
The scope of the kinetic resolution of azomethine imines*.
Figure 2Evidence of the asymmetric cyanation of ketimines.
The asymmetric reaction hardly proceeded in the absence of methyl acrylate, and the enantioselectivities obtained with the catalysts 3n and 3o with one of the chiral centres removed or reversed were very poor, highlighting the importance of the matched chiral dipeptide skeleton in the enantio-differentiation process.
Figure 331P NMR and in situ IR studies in CH2Cl2.
(31P NMR-a) 3j: MA:Me3SiCN: 1a=1:1:1:1, at the end of the reaction; (31P NMR-b) 3j: MA:Me3SiCN=1:1:1; (31P NMR-c) 3j: MA=1:1; (31P NMR-d) 3j: Me3SiCN=1:1; (31P NMR-e) 3j (MA=methyl acrylate); (in situ IR-a) 3j: MA=1:1; (in situ IR-b) 3j: MA:Me3SiCN=1:1:1; (in situ IR-c) 3j: MA:Me3SiCN:1a=1:1:1:1; (in situ IR-d) At the end of the reaction; (3D IR-e) The integral three-dimensional spectrum of in situ IR-b; (3D IR-f) the local-three-dimensional spectrum of in situ IR-b.
Figure 4Positive nonlinear effect between ee2a and ee3j.
The positive nonlinear effect suggesting the reaction was promoted by an aggregation of the catalyst.