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Carbonyl compounds nitrile oxide cycloadditions

Nowadays a broad range of different 1,3-dipoles, ozone, azides ° and diazoalkanes on the one hand as well as dipoles like nitrones, nitro compounds, carbonyl ylides, nitrile oxides, nitrile imines and ylides on the other hand, are well-established. The addition of these 1,3-dipoles to an alkene is one of the most frequently used cycloaddition reactions in organic synthesis. ... [Pg.269]

Dipolar cycloaddition reactions between nitrile oxides and aUcenes produce 2-isoxazolines. Through reductive cleavage of the N—O bond of the 2-isoxazohnes, the resulting heterocycles can be readily transformed into a variety of important synthetic intermediates such as p-hydroxy ketones (aldols), p-hydroxy esters, a,p-unsaturated carbonyl compounds, y-amino alcohols, imino ketones and so forth (7-12). [Pg.779]

Fig. 2.3 shows the core structures of the most important 1,3-dipoles, and what they are all called. As with dienes, they can have electron-donating or withdrawing substituents attached at any of the atoms with a hydrogen atom in the core structure, and these modify the reactivity and selectivity that the dipoles show for different dipolarophiles. Some of the dipoles are stable compounds like ozone and diazomethane, or, suitably substituted, like azides, nitrones, and nitrile oxides. Others, like the ylids, imines, and carbonyl oxides, are reactive intermediates that have to be made in situ. Fig. 2.4 shows some examples of some common 1,3-dipolar cycloadditions, and Fig. 2.5 illustrates two of the many ways in which unstable dipoles can be prepared. [Pg.11]

Acetyl- and 3-benzoylisoxazoles 389 (and isoxazolines) have been prepared by one-pot reactions of alkynes (and alkenes) with ammonium cerium(iv) nitrate (CAN(lv)) or ammonium cerium(lll) nitrate tetrahydrate (CAN(m))-formic acid, in acetone or acetophenone. These processes probably involve 1,3-dipolar cycloaddition of nitrile oxides produced via nitration of the carbonyl compound by cerium salts. The existence of nitrile oxides as reaction intermediates was proved by the formation of the dimer furoxan 390 when the above reaction was carried out in absence of any dipolarophile (Scheme 95) <2004T1671>. An analogous improved procedure has been applied to alkynyl glycosides as dipolarophiles for the preparation of carbohydrate isoxazoles <2006SL1739>. [Pg.430]

Oxidation of aryl hydrazones by thianthrene radical cation have also been suggested to occur via electron-transfer and such reactions have been reviewed previously [110]. Reaction of oximes with thianthrene radical cation produces cycloaddition products [56,57], nitriles, and carbonyl compounds. The cycloaddition products are believed to be formed via initial one-electron oxidation of the oxime. [Pg.9]

The most interesting series of observations in this field have been made on the catalytic action of Lewis acids, which are also effective catalysts of Diels-Alder reactions (Section 4.1.6). In the presence of BF3 or its derivatives it has been possible to obtain 1,3-cycloadditions that do not proceed under uncatalysed conditions, e.g. those of benzonitrile oxide to aliphatic nitriles and carbonylic compounds and to oximes . The method has been applied also to the cycloaddition of diazomethane to CN multiple bonds, by using alkyl aluminium halides . Lewis acid catalysts probably act by making the dipolarophiles more polar, through complexing. [Pg.131]


See other pages where Carbonyl compounds nitrile oxide cycloadditions is mentioned: [Pg.96]    [Pg.234]    [Pg.17]    [Pg.518]    [Pg.531]    [Pg.889]    [Pg.735]    [Pg.456]    [Pg.130]    [Pg.131]    [Pg.456]    [Pg.433]    [Pg.221]    [Pg.395]    [Pg.2]    [Pg.1092]    [Pg.175]    [Pg.1092]    [Pg.653]   


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Carbonyl compounds cycloadditions

Carbonyl compounds nitriles

Carbonyl oxidation

Carbonyl oxide

Carbonyl oxides cycloaddition

Carbonylation oxide

Carbonylative cycloadditions

Cycloaddition carbonylative

Cycloaddition compounds

Cycloaddition oxide

Cycloadditions oxidative

Nitrile compounds

Nitrile oxide cycloaddition

Nitrile oxides

Nitrile oxides cycloadditions

Nitriles cycloaddition

Nitriles cycloadditions

Nitriles nitrile oxides

Oxidation carbonylative

Oxidation oxidative carbonylation

Oxidative carbonylation

Oxidative carbonylations

Oxidative cycloaddition

Oxidative nitriles

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