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Cyclohexanone synthesis

F E R R I E R Chiral cyclohexanone synthesis Transtormatlon o< unsaturated glycosides into cyclohexanone derivatives by heating in aqueous acetone with mercury (II) salts... [Pg.119]

Ruder, S. M. Kulkami, V. R. Phase transfer catalyzed alkylation of 2-(diethoxyphosphinyl)-cyclohexanone. Synthesis 1993, 945—947. [Pg.16]

FERRARIO - AKERMANN Thiocyclization 117 FERRIER Carbohyth-ate synthesis 118 FERRIER Cheat cyclohexanone synthesis 119 FINEGAN Tatrazole synthesis 120 Rnkbsmer 73... [Pg.453]

FUJIMOTO BELLEAU Cyclohexanone Synthesis Synthesis ol tused cyclohexenones from lactones (an alternative to the Robinson annulation). [Pg.301]

Provide an analysis of 2-substituted cyclohexanone synthesis that is related to Functional Groups-11. Repeat the exercise for 4-substituted cyclohexanones, 2,4-disubstituted cyclohexanones, and so on. (Functional Groups-11)... [Pg.244]

Synthesis Only cyclohexanone can enolise, but the a-diketone is more electrophilic no control needed ... [Pg.28]

When planning the synthesis of a compound using an organometallic reagent or indeed any synthesis the best approach is to reason backward from the product This method is called retrosynthetic analysis Retro synthetic analysis of 1 methylcyclohexanol suggests it can be prepared by the reaction of methylmagnesmm bromide and cyclohexanone... [Pg.614]

Another synthesis of pyrogaHol is hydrolysis of cyclohexane-l,2,3-trione-l,3-dioxime derived from cyclohexanone and sodium nitrite (16). The dehydrogenation of cyclohexane-1,2,3-triol over platinum-group metal catalysts has been reported (17) (see Platinum-GROUP metals). Other catalysts, such as nickel, rhenium, and silver, have also been claimed for this reaction (18). [Pg.377]

A Methylamino)phenol. This derivative, also named 4-hydroxy-/V-methy1ani1ine (19), forms needles from benzene which are slightly soluble in ethanol andinsoluble in diethyl ether. Industrial synthesis involves decarboxylation of A/-(4-hydroxyphenyl)glycine [122-87-2] at elevated temperature in such solvents as chlorobenzene—cyclohexanone (184,185). It also can be prepared by the methylation of 4-aminophenol, or from methylamiae [74-89-5] by heating with 4-chlorophenol [106-48-9] and copper sulfate at 135°C in aqueous solution, or with hydroquinone [123-31 -9] 2l. 200—250°C in alcohoHc solution (186). [Pg.315]

The type of synthesis in which the two-atom fragment supplies C-5 + C-6 is uncommon but useful in preparing pyrimidine- and 5,6,7,8-tetrahydroquinazoline-2,4-diamines. Thus, dicyandiamide (S78) with benzyl methyl ketone (S77) yields 6-methyl-5-phenylpyrimidine-2,4-diamine (S79), or with acetophenone it yields 6-phenylpyrimidine-2,4-diamine (62JOC2708). Likewise, with cyclohexanone it yields the tetrahydroquinazolinediamine (SSO) and by using N- substituted dicyandiamides, 2- and/or 4-alkylamino groups may be introduced (65JOC1837). [Pg.111]

The least troublesome routes to 3,4-dihydro- and 1,2,3,4-tetrahydro-quinazoline are probably the reduction of quinazoline by sodium borohydride, in water for the former or in methanol for the latter. Both must be isolated as salts. The dihydroquinazoline may be formed also by reduction with LAH in ether (65JHC157). In contrast, 5,6,7,8-tetrahy-droquinazoline is best made by primary synthesis from 2-formylcyclohexanone and for-mamide (57CB942) or from cyclohexanone and trisformamidomethane (60CB1402). [Pg.124]

Formation of a 1,2-disubstituted hydrazine by acid hydrolysis of an appropriately substituted pyrazolidine has been noted (67HC(22)l), but the most interesting ring fission of pyrazolidines involves the N(l)—N(2) bond of 1-phenylpyrazolidines (421). If, instead of phenylhydrazone, compound (421) is used in the Fischer indole synthesis, N- aminopropylin-doles are formed (73T4045). Scheme 39 shows the reaction with cyclohexanone. [Pg.256]

Chloral forms well-crystallized adducts (126) with diaziridines containing at least one NH group (B-67MI50800). Carbonyl addition products to formaldehyde or cyclohexanone were also described. Mixtures of aldehydes and ammonia react with unsubstituted diaziridines with formation of a triazolidine ring (128). Fused diaziridines like (128) are always obtained in ring synthesis of diaziridines (127) from aldehyde, ammonia and chloramine. The existence of three stereoisomers of compounds (128) was demonstrated (76JOC3221). Diaziridines form Mannich bases with morpholine and formaldehyde (64JMC626), e.g. (129). [Pg.213]

This synthesis works especially well with cyclohexanone giving 80% oxaziridines with either chloramine (77JPR195) or (V-chloromethylamine. Simple aliphatic ketones and ortho substituted aromatic aldehydes yield 30-50% oxaziridines with N-chloromethylamine (65CB2516). [Pg.229]

FISCHER - BORSCHE - DRECHSEL Indole synthesis Indole synlhesis Irom phenylhydrazones ol ketones (Fischer), m the case ol cyclohexanone phenylhydrazones letrahydrocarbazoles are oblained (Borsche-Drechsel). [Pg.123]

We present here examples of this condensation with an aromatic aldehyde and a cyclic ketone. Both of these examples are useful because, although other methods are available for their preparation, problems often attend these syntheses. In the synthesis of cyclohexy11deneaceton1tr11e, for example, the standard method results exclusively In the g.y-lsomer and none of the a,g-Isomer. In Part A of this procedure, cyclohexanone Is condensed with acetonitrile to give predominantly the conjugated Isomer (80-83%) whicfi is then separated from the nonconjugated isomer by selective bromination. [Pg.184]

Organic chemists often use enantiomerically homogeneous starting materials for the synthesis of complex molecules (see Chiral Drugs, p. 296). A novel preparation of the S enantiomer of compound B has been described using a bacterial cyclohexanone monooxygenase enzyme system. [Pg.749]

The synthesis of a large number of y-pyrones and y-pyranols from enamines has been brought about through the use of a wide variety of bifunctional molecules. These molecules include phenolic aldehydes (126,127), phenolic Mannich bases (128), ketal esters (129), and diketene (120-132). All of these molecules have an electrophilic carbonyl group and a nucleophilic oxygen center in relative 1,4 positions. This is illustrated by the reaction between salicylaldehyde (101) and the morpholine enamine of cyclohexanone to give pyranol 102 in a quantitative yield (127). [Pg.235]

The reactions of dichlorocarbene with morpholine and piperidine enamines derived from cyclopentanone and cyclohexanone have been reported to lead to ring expanded and a-chloromethylene ketone products (355,356). Similarly a-chloro-a, -unsaturated aldehydes were obtained from aldehyde derived enamines (357). Synthesis of aminocyclopropanes (353,359) could be realized by the addition of diphenyldiazomethane (360) and the methylene iodide-zinc reagent to enamines (367). [Pg.378]

The application of this addition to aminomethylene ketones provides a convenient synthesis of monoamides of pimelic acid (508). It should be noted that the corresponding oxidation of hydroxy methylene cyclohexanone leads to ring contraction and formation of cyclopentanoic acid. [Pg.418]


See other pages where Cyclohexanone synthesis is mentioned: [Pg.108]    [Pg.246]    [Pg.381]    [Pg.1126]    [Pg.108]    [Pg.179]    [Pg.108]    [Pg.246]    [Pg.381]    [Pg.1126]    [Pg.108]    [Pg.179]    [Pg.82]    [Pg.275]    [Pg.319]    [Pg.426]    [Pg.116]    [Pg.590]    [Pg.4]   
See also in sourсe #XX -- [ Pg.372 , Pg.373 ]




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Chiral cyclohexanones, synthesis

Cyclohexanone asymmetric synthesis

Cyclohexanone, 2,3-dialkyl1-enolates synthesis

Cyclohexanone, 2-allylBaeyer-Villiger reaction synthesis

Cyclohexanone, 2-methylcyclohexylimine synthesis

Dimethylamine, trimethylsilylenamine synthesis via cyclohexanone

FERRIER Chiral cyclohexanone synthesis

FUJIMOTO-BELLEAU Cyclohexanone Synthesis

Hydroxy cyclohexanones, synthesis

Stereoselective synthesis of substituted cyclohexanone cyanohydrins

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