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Thiophene 3-acyl-2-alkyl-5-aryl

Benzo[6]thiophene, 2-acetyl-3-hydroxy-synthesis, 4, 892 Benzo[6]thiophene, 2-acyl-synthesis, 4, 918 Benzo[6]thiophene, 3-acyl-synthesis, 4, 918- 19 Benzo[6]thiophene, acylamino-synthesis, 4, 815 Benzo[6]thiophene, alkenyl-synthesis, 4, 917 Benzo[6]thiophene, 2-alkoxy-synthesis, 4, 929 Benzo[6]thiophene, 3-alkoxy-synthesis, 4, 929 Benzo[6]thiophene, 4-alkoxy-synthesis, 4, 930 Benzo[6]thiophene, 2-alkyl-synthesis, 4, 877-878 Benzo[6]thiophene, 2-alkylthio-synthesis, 4, 931 Benzo[6]thiophene, 2-amino-diazotization, 4, 810 reactivity, 4, 797 stability, 4, 810 synthesis, 4, 869, 924-925 tautomerism, 4, 38 Benzo[6]thiophene, 3-amino-cycloaddition reactions, 4, 68 synthesis, 4, 109, 881, 925 Benzo[6]thiophene, 4-amino-synthesis, 4, 925 Benzo[6]thiophene, 5-amino-synthesis, 4, 925 Benzo[6]thiophene, 7-amino-synthesis, 4, 925 Benzo[6]thiophene, 3-t-amyl-synthesis, 4, 915 Benzo[6]thiophene, 2-aryl-synthesis, 4, 881... [Pg.559]

For nonsymmetrical bicyclic imidazoles, direct TV-alkylation (arylation or acylation) is problematic since site-selectivity is influenced by many subtle electronic effects. Thus, Curtius rearrangement-based syntheses have been used widely for the synthesis of differentiated TV-substituted thienoimidazoles (104), (106) from (acylamido)thiophene carbonyl azides (103), (105) (Equations (30) and (31)) <79JCR(S)96>. These intermediates are useful for the synthesis of angiotensin II antagonists (Equation (32)) <91EUP483683,92EUP520423>. [Pg.68]

Solid phase synthesis of highly substituted thiophene derivatives 15 using a cyclic malonic acid ester resin 14 was also reported. Highly pure thiophene derivatives were reported to have been prepared by this solid phase synthesis <0314851>. While alkyl or aromatic substitutions on the P position to the carbonyl yielded the corresponding 5-alkyl/aryl substituted 2-acyl aminothiophene, acetaldehyde did not produce the corresponding 2,3- disubstituted thiophene. [Pg.101]

The rate of acetylation of 0-(hydrox3Tnethyl)cellulose (and other hydroxy compounds) by mixtures of carboxylic acids and their anhydrides has been found to increase greatly in the presence of trifluoroacetic acid. The acceleration is very much less with mono- and tri-chloroacetic acids, presumably because they form unsymmetrical anhydrides which are less effective acylating agents than acyl trifluoroacetates. The exceptional acylating power of the latter anhydrides is shown by their use in the synthesis of alkyl aryl ketones from polyalkylbenzenes, phenyl ethers, furan, and thiophene under mild conditions. The principle has been extended to include acids... [Pg.68]

Thiophene, 2-acyl-3-amino-5-aryl-4-cyano-synthesis, 4, 897 Thiophene, alkenyl-synthesis, 4, 917 Thiophene, alkoxy-synthesis, 4, 929 Thiophene, 2-alkoxy-5-aryl-synthesis, 4, 929 Thiophene, alkyl-... [Pg.889]

A wide variety of substituents are tolerated. The group R can be alkyl, halogen, alkoxy, -amido, azi-domethyl, ester, aryl, aryloxy and aryloyl, and at least one ortho substituent is permissible with no loss in yield. TTie aromatic ring can also be 2-naphthyl, 9,10-dihydro-2-phenanthryl, 3-pyridyl, thiophen-2-yl or pyrrol-3-yl. The group R can be hydrogen, yl, acyl or acetic acid. Beyond Ae antiinflammatory targets, successful reaction substrates include the methyl ketones of a binaphthyl crown ether, a morphinane and a polyaromatic hydrocarbon. The preparation of ibuprofen methyl ester (38) is shown in equation (37) as a typical example. ... [Pg.829]


See other pages where Thiophene 3-acyl-2-alkyl-5-aryl is mentioned: [Pg.257]    [Pg.12]    [Pg.36]    [Pg.561]    [Pg.249]    [Pg.36]    [Pg.331]    [Pg.561]    [Pg.462]    [Pg.36]    [Pg.213]    [Pg.561]    [Pg.197]    [Pg.516]    [Pg.561]    [Pg.145]    [Pg.2]   
See also in sourсe #XX -- [ Pg.59 ]




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Acyl-thiophenes

Acyls alkylation

Thiophene 2- acyl

Thiophene 2- alkyl

Thiophene acyl-, alkyl

Thiophene acylation

Thiophene, alkylation

Thiophenes acylation

Thiophenes alkylation

Thiophenes arylation

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