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Intramolecular reactions alcohol-amine conversion

Scheme 1.64). The Ag(I)-mediated cyclization afforded dipole 306 for 1,3-dipolar cycloaddition with methyl vinyl ketone to yield adducts 307 and the C(2) epimer as a 1 1 mixture (48%). Hydrogenolytic N—O cleavage and simultaneous intramolecular reductive amination of the pendant ketone of the former dipolarophile afforded a mixture of alcohol 308 and the C(6) epimer. Oxidation to a single ketone was followed by carbonyl removal by conversion to the dithiolane and desulfurization with Raney nickel to afford the target compound 305 (299). By this methodology, a seven-membered nitrone (309) was prepared for a dipolar cycloaddition reaction with Al-methyl maleimide or styrene (301). [Pg.54]

Rhodium(II) acetate catalyzes C—H insertion, olefin addition, heteroatom-H insertion, and ylide formation of a-diazocarbonyls via a rhodium carbenoid species (144—147). Intramolecular cyclopentane formation via C—H insertion occurs with retention of stereochemistry (143). Chiral rhodium (TT) carboxamides catalyze enantioselective cyclopropanation and intramolecular C—N insertions of CC-diazoketones (148). Other reactions catalyzed by rhodium complexes include double-bond migration (140), hydrogenation of aromatic aldehydes and ketones to hydrocarbons (150), homologation of esters (151), carbonylation of formaldehyde (152) and amines (140), reductive carbonylation of dimethyl ether or methyl acetate to 1,1-diacetoxy ethane (153), decarbonylation of aldehydes (140), water gas shift reaction (69,154), C—C skeletal rearrangements (132,140), oxidation of olefins to ketones (155) and aldehydes (156), and oxidation of substituted anthracenes to anthraquinones (157). Rhodium-catalyzed hydrosilation of olefins, alkynes, carbonyls, alcohols, and imines is facile and may also be accomplished enantioselectively (140). Rhodium complexes are moderately active alkene and alkyne polymerization catalysts (140). In some cases polymer-supported versions of homogeneous rhodium catalysts have improved activity, compared to their homogenous counterparts. This is the case for the conversion of alkenes direcdy to alcohols under oxo conditions by rhodium—amine polymer catalysts... [Pg.181]

The reaction of 5-acetoxy-5,6,7,8-tetrahydroisoquinoline 109 with Mel followed by reduction afforded the octahydroisoquinoline 110, which upon treatment with ethyl chloroformate followed by hydrolysis gave 111. The condensation of 111 with 2-bromoisovanillin afforded 112, which was reduced to give the benzyl alcohol intermediate 113. Heck reaction of 113 led to the formation of 0-ring affording 115. The yield of the above intramolecular cyclization was increased significantly via prior protection of the alcohol in 113 as silyl ether 114. Conversion of 115 to benzyl chloride 116 was achieved via the treatment with NCS and triphenylphosphine. Further, Heck reaction of 116 afforded the tertiary amine 117 via an intramolecular A -benzylation. The amine 117 was converted into the corresponding iV-methylammonium iodide 118, which was then subjected to Stevens rearrangement with PhLi to afford ( )-desoxycodeine 119 in 83 % yield. ... [Pg.527]


See other pages where Intramolecular reactions alcohol-amine conversion is mentioned: [Pg.3789]    [Pg.3788]    [Pg.265]    [Pg.181]    [Pg.91]    [Pg.299]    [Pg.91]    [Pg.150]    [Pg.596]    [Pg.268]    [Pg.91]    [Pg.184]    [Pg.11]    [Pg.500]    [Pg.288]    [Pg.11]    [Pg.56]    [Pg.307]    [Pg.276]    [Pg.11]    [Pg.1085]    [Pg.520]    [Pg.78]    [Pg.124]    [Pg.129]    [Pg.264]    [Pg.273]    [Pg.362]    [Pg.406]    [Pg.385]    [Pg.126]    [Pg.130]    [Pg.647]    [Pg.719]    [Pg.22]   


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Alcohols amination

Alcohols amines

Alcohols conversion

Amines conversion

Conversion reactions

Intramolecular amination

Intramolecular aminations

Intramolecular conversions

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