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Electrophilic aromatic substitution reactions asymmetric synthesis

C-H activation at a primary benzylic site was the key step in very short syntheses of lig-nans 206 and 207 (Scheme 14.27) [138]. Even though both the substrate 203 and the vinyl-diazoacetate 204 contain very electron-rich aromatic rings, C-H activation to form 205 (43% yield and 91% ee) is still possible because the aromatic rings are sterically protected from electrophilic aromatic substitution by the carbenoid. Reduction of the ester in (S)-205 followed by global deprotection of the silyl ethers completes a highly efficient three-step asymmetric total synthesis of (-i-)-imperanene 206. Treatment of (R)-205 in a more elaborate synthetic sequence of a cascade Prins reaction/electrophilic substitution/lacto-nization results in the total synthesis of a related lignan, (-)-a-conidendrin 207. [Pg.334]

The same group also developed the asymmetric synthesis of 3-amino 8-lactams 91 by phosphoric acid-catalyzed cyclization reactions involving azlactones 90 as both nucleophiles and electrophiles (Scheme 2.27) [38]. In addition to aromatic amines, substituted aryl ethylamines 92 participated well in such cyclization reactions to afford products 91a, which can be converted to benzo[a]quinolizidine derivatives 93 after being treated with trifluoroborane in high overall yields with excellent enan-tioselectivity, ranging from 90 to 97% ee [38]. [Pg.69]

Friedel-Crafts alkylation is one of the most frequently used and widely studied reactions in organic chemistry. Since the initial discovery by Charles Friedel and James Mason Crafts in 1877, a large number of applications have emerged for the construction of substituted aromatic compounds. Friedel-Crafts alkylation processes involve the replacement of C—H bond of an aromatic ring by an electrophilic partner in the presence of a Lewis acid or Bronsted acid catalyst. Particularly, catalytic asymmetric Friedel-Crafts alkylation is a very attractive, direct, and atom-economic approach for the synthesis of optically active aromatic compounds. However, it took more than 100 years from the discovery of this reaction until the first catalytic asymmetric Friedel-Crafts (AFC) alkylation of naphthol and ethyl pyruvate was realized by Erker in 1990. Nowadays, owing to continued efforts in developing... [Pg.214]


See other pages where Electrophilic aromatic substitution reactions asymmetric synthesis is mentioned: [Pg.7]    [Pg.18]    [Pg.791]    [Pg.60]    [Pg.142]    [Pg.26]    [Pg.124]   
See also in sourсe #XX -- [ Pg.10 , Pg.11 ]




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Aromatic substitution, asymmetric

Aromatic synthesis

Aromaticity electrophilic aromatic substitution

Aromatics electrophilic substitution

Asymmetric substitution reactions

Asymmetric synthesis reactions

Electrophile Electrophilic aromatic substitution

Electrophile reactions Electrophilic aromatic

Electrophiles synthesis

Electrophilic aromatic reactions

Electrophilic aromatic synthesis

Electrophilic reactions synthesis

Electrophilic substitution reaction

Substitution electrophilic aromatic

Substitution electrophilic aromatic substitutions

Substitution reactions aromatic

Substitution reactions electrophile

Substitution reactions electrophilic aromatic

Substitution synthesis

Synthesis aromatic substitution

Synthesis electrophilic substitution

Synthesis substitution reactions

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