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Asymmetric allyltitanation

Scheme 13.16. Matched effect in the asymmetric allyltitanation results in a high diastereofacial selectivity. Scheme 13.16. Matched effect in the asymmetric allyltitanation results in a high diastereofacial selectivity.
The above interesting approach to the asymmetric allyltitanation reaction does, however, have a limitation. Thus, L-glucose is much more expensive that the D-form and, consequently, homoallylic alcohols of the opposite configuration cannot easily be obtained by this method. In an attempt to induce the opposite si face selectivity, other acetonide derivatives of monosaccharides from the xylose, idose, and allose series were tested [42b,42c], The enantiofacial discrimination was, however, much lower than that with DAGOH and both re and si face selective additions to aldehydes were observed. [Pg.462]

Asymmetric allyltitanation of RCHO. A complex, (R,R)-3, prepared in two steps from the chiral diol R,R-1 derived from i.-tartaric acid (14,232 16,314), effects allylation of aldehydes in >90% ee. [Pg.321]

Efforts have been made to apply r 3-allyltitanium chemistry to the asymmetric synthesis of homoallylic alcohols and carboxylic acids. The synthesis and reactions of chiral r 3 -allyl-titanocenes with planar chirality, or containing Cp ligands with chiral substituents, have been reported [6c,15,30—32]. The enantiofacial selectivity in the allyltitanation reactions has been examined for the complexes 12 [15], 13 [30], 14 [31], 15, 16, and 17 [32] depicted in Figure 13.2. [Pg.458]


See other pages where Asymmetric allyltitanation is mentioned: [Pg.460]    [Pg.518]    [Pg.23]    [Pg.9]    [Pg.460]    [Pg.460]    [Pg.518]    [Pg.23]    [Pg.9]    [Pg.460]    [Pg.463]    [Pg.463]   
See also in sourсe #XX -- [ Pg.462 ]

See also in sourсe #XX -- [ Pg.462 ]




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