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Conjugate addition reactions enamine activation

Enantioselective Conjugate Addition Reactions Enamine Activation... [Pg.57]

Asymmetric conjugate addition reactions of carbonyl compounds with a, -unsaturated systems are known. The simple amine a-methylbenzylamine 68 acts as both the activator (to give the imine and hence the enamine required for alkylation) and as the chiral auxiliary to effect neutral asymmetric conjugate-addition reactions. " Thus, condensation of (5)-a-methylbenzylamine 68 with 2-methylcyclohexanone, followed by addition of methyl acrylate (and hydrolysis of the product imine), gave the 2,2-disubstituted cyclohexanone 69 with high enantiomeric purity (1.78). [Pg.40]

Enantioselective Conjugate Addition Reactions via Enamine Activation O Q Ph... [Pg.33]

The majority of the Michael-type conjugate additions are promoted by amine-based catalysts and proceed via an enamine or iminium intermediate species. Subsequently, Jprgensen et al. [43] explored the aza-Michael addition of hydra-zones to cyclic enones catalyzed by Cinchona alkaloids. Although the reaction proceeds under pyrrolidine catalysis via iminium activation of the enone, and also with NEtj via hydrazone activation, both methods do not confer enantioselectivity to the reaction. Under a Cinchona alkaloid screen, quinine 3 was identified as an effective aza-Michael catalyst to give 92% yield and 1 3.5 er (Scheme 4). [Pg.151]

When the donor and the acceptor of the conjugate addition are carbonyl compounds, the amine catalyst may activate both reagents, forming the iminium and enamine intermediates, respectively. The major mechanistic path is dictated by the structure of the substrates and catalyst and, to a lesser extent, by the reaction conditions. [Pg.87]

This catalytic cascade was first realized using propanal, nitrostyrene and cinnamaldehyde in the presence of catalytic amounts of (9TMS-protected diphenylprolinol ((.S )-71,20 mol%), which is capable of catalyzing each step of this triple cascade. In the first step, the catalyst (S)-71 activates component A by enamine formation, which then selectively adds to the nitroalkene B in a Michael-type reaction (Hayashi et al. 2005). The following hydrolysis liberates the catalyst, which is now able to form the iminium ion of the a, 3-unsaturated aldehyde C to accomplish in the second step the conjugate addition of the nitroalkane (Prieto et al. 2005). In the subsequent third step, a further enamine reactivity of the proposed intermediate leads to an intramolecular aldol condensation. Hydrolysis returns the catalyst for further cycles and releases the desired tetrasubstituted cyclohexene carbaldehyde 72 (Fig. 8) (Enders and Hiittl 2006). [Pg.77]

The process mechanism as shown in Figure 2.23 consists of an initial activation of the aldehyde (66) by the catalyst [(5)-67] with the formation of the corresponding chiral enamine, which then, selectively, adds to nitroalkene (65) in a Michael-type reaction. The following hydrolysis liberates the catalyst, which forms the iminium ion of the a,(3-unsaturated aldehyde (62) to accomplish the conjugate addition with the nitroalkane A. In the third step, another enamine activation of the intermediate B leads to an intramolecular aldol condensation via C. Finally, the hydrolysis of it returns the catalyst and releases the desired chiral tetra-substituted cyclohexene carbaldehyde (68). [Pg.73]


See other pages where Conjugate addition reactions enamine activation is mentioned: [Pg.309]    [Pg.247]    [Pg.12]    [Pg.18]    [Pg.19]    [Pg.56]    [Pg.62]    [Pg.65]    [Pg.67]    [Pg.222]    [Pg.238]    [Pg.248]    [Pg.254]    [Pg.322]    [Pg.372]    [Pg.240]    [Pg.283]    [Pg.320]    [Pg.208]    [Pg.616]    [Pg.240]    [Pg.240]    [Pg.356]    [Pg.92]    [Pg.249]    [Pg.222]   


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