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Lithium borohydride olefinic aldehydes

The best reagents for reduction of olefinic aldehydes to olefinic alcohols are lithium aluminum hydride and sodium borohydride. Crotyl alcohol, CHjCH = CHCHjOH, and cinnamyl alcohol, CjH,CH =CHCHjOH, have been prepared in excellent yields. Cinnamyl alcohol is further reduced at higher temperatures to hydrocinnamyl alcohol. Citral, (CHj)jC =CHCHjCHjC(CH3)=CHCHO, may be selectively reduced to the ctOTesponding dienol by catalytic hydrogenation over platinum catalyst. A new method for the preparation of enediol esters of the type... [Pg.527]

Olefinic aldehydes have been synthesized by a variety of methods including oxidation of the corresponding primary alcohols with the chromium trioxide-pyridine complex 195—197) or N-chlorosuccinimide-dimethyl sulfide complex 198), heating a primary alken-l-yl mesylate with dimethylsulfoxide 199), or by alkylation of the lithium salt of 5,6-dihydro-2,4,4,6-tetramethyl-l,3-(4H)-oxazine with an alkynyl iodide followed by sodium borohydride reduction and acid hydrolysis (200). [Pg.70]

The starting compound 251 was reduced to 252 with sodium borohydride. The latter was heated under reflux in 6% sulfuric acid in methanol to afford compound 253. Treatment of the latter with maleic anhydride at 170° for 3 hr afforded compound 254. Bisdecarboxylation of 254 with dicarbonyl bistriphenylphosphinenickel in anhydrous diglyme under nitrogen at reflux temperature for 6 hr afforded the olefin 255 in 69% yield (171). The latter was reduced with lithium aluminium hydride to the primary alcohol 256, which was oxidized to the aldehyde 257 with Ar,A -dicyclohexylcarbodiimide, dimethyl sulfoxide and pyridine in dry benzene. Treatment of the aldehyde 257 with an excess of the Grignard reagent prepared from l-bromo-3-benzyloxybutane afforded a mixture of diastereoisomers represented by the structure 258. [Pg.170]

The reduction of 569e with lithium aluminum hydride followed by monoprotection with er -butyldimethylsilyl chloride and Dess-Martin oxidation of the free hydroxyl group to an aldehyde affords 610. An aldol reaction of 610 with ( S)-(y-alkoxyallyl)stannane (611) in the presence of boron trifluoride etherate provides exculsively, in 80% yield, the alcohol 612. Ozonolysis of the olefin followed by sodium borohydride reduction affords diol 613, which is converted to acetonide 614 (Scheme 135). Interestingly, alcohol 612, the double bond of which is susceptible to stereocontrolled introduction of hydroxyl groups, could lead to o)-deoxy sugars [197]. [Pg.413]


See other pages where Lithium borohydride olefinic aldehydes is mentioned: [Pg.354]    [Pg.426]    [Pg.481]    [Pg.55]    [Pg.292]    [Pg.50]    [Pg.50]    [Pg.66]    [Pg.55]    [Pg.180]    [Pg.417]    [Pg.74]    [Pg.74]    [Pg.81]   
See also in sourсe #XX -- [ Pg.98 , Pg.189 ]




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