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Lithium amides 2,3 -Wittig rearrangement

The pioneering work on enantioselective [2,3]-Wittig rearrangement was carried out by Marshall and Lebreton in the ring-contracting rearrangement of a 13-membered cyclic ether using lithium bis(l-phenylethyl) amide (63) as a chiral base (equation 34). Upon treatment with a (S,S)-63 (3 equivalents) in THF at —70 to —15 °C, ether 64 afforded the enantioenriched [2,3]-product 65 in 82% yield with 69% ee. The reaction was applied in the synthesis of (+)-aristolactone (66). [Pg.765]

A high level of enantioselectivity in an acyclic system has been reported in the rearrangement of tricarbonylchromium(O) complexes of allyl benzyl ethers using chiral lithium amide base 73 (equation 38) . Upon treatment with 1.1 equivalents of lithium amide 73 and 1 equivalent of LiCl at —78 to —50°C, ether 74 afforded the rearrangement product R)-75 in 80% yield with 96% ee. The effect of substituents on the chemical yields and enantioselectivity of the [2,3]-Wittig rearrangement was also studied (see Table 3). [Pg.766]

Other Enantioselective Reactions. Enantioselective epoxide elimination by chiral bases has been demonstrated. More recently, the enantioselective [2,3]-Wittig rearrangement of a 13-membered propargylic ally lie ether has been performed using the lithium amide of (f ,f )-(l) as the base for deprotonation (eq 15). For this particular substrate, THF is a better solvent than ether, although pentane produces better results in a related transformation (eq 16). In fact, a change in solvent in this type of reaction has been shown to lead to a reversal of the stereoselectivity of the transformation. ... [Pg.254]

Generally, ester enolates of structure (202 R = M, R = Oalkyl) rearrange via a 3,3-shift, whereas the corresponding amide enolates (202 R = M, R = N(alkyl)2) and acid dianions (202 R = M, R = OM) prefer the 2,3-pathway (equation 20). Both pathways have been observed with ketone enolates (202 R = M, R = alkyl). With substrate (179), Koreeda and Luengo observed only traces of Wittig rearrangement product (205), except for the lithium enolate, where (205) accounted for up to 20% of the reaction mixture (equation 21). ° Thomas and Dubini, however, reported predominant formation of 2,3 Wittig products (207) and (209) under base treatment of ketones (206) and (208) (equation 22). ... [Pg.851]

Scheme 6.21. Asymmetric [2,3]-Wittig rearrangements using a chiral lithium amide base [70,87-89]. The transition structure leading to the major enantiomer is illustrated. Scheme 6.21. Asymmetric [2,3]-Wittig rearrangements using a chiral lithium amide base [70,87-89]. The transition structure leading to the major enantiomer is illustrated.

See other pages where Lithium amides 2,3 -Wittig rearrangement is mentioned: [Pg.169]    [Pg.367]    [Pg.26]    [Pg.88]    [Pg.223]    [Pg.609]    [Pg.52]    [Pg.481]    [Pg.482]    [Pg.491]    [Pg.175]   
See also in sourсe #XX -- [ Pg.765 , Pg.766 ]




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Chiral lithium amide bases 2,3]-Wittig rearrangement

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WITTIG Rearrangement

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