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Chiral oxaziridines

Also due to the high barrier of inversion, optically active oxaziridines are stable and were prepared repeatedly. To avoid additional centres of asymmetry in the molecule, symmetrical ketones were used as starting materials and converted to oxaziridines by optically active peroxyacids via their ketimines (69CC1086, 69JCS(C)2648). In optically active oxaziridines, made from benzophenone, cyclohexanone and adamantanone, the order of magnitude of the inversion barriers was determined by racemization experiments and was found to be identical with former results of NMR study. Inversion barriers of 128-132 kJ moF were found in the A-isopropyl compounds of the ketones mentioned inversion barriers of the A-t-butyl compounds lie markedly lower (104-110 kJ moF ). Thus, the A-t-butyloxaziridine derived from adamantanone loses half of its chirality within 2.3 days at 20 C (73JCS(P2)1575). [Pg.200]

Nitrogen chirality may also be produced by the action of an achiral peroxyacid on a Schiff base containing a chiral amine (75JOC3878). In this case the oxaziridine contains a configurationally known centre of chirality relative to this, absolute configurations of the centres of chirality at nitrogen and carbon, and thus the complete absolute configuration of the molecule, can be determined (see Section 5.08.2.2). [Pg.200]

NMR spectra of oxaziridine enantiomers may be different from each other in chiral media. In the presence of chiral arylperfluoroalkylcarbinols, shift differences of up to 0.35 p.p.m. are observed, which may be used for discrimination of enantiomers (77JOC3217). [Pg.200]

The earliest attempts to obtain optically active sulfoxides by the oxidation of sulfides using oxidants such as chiral peracids did not fare well. The enantiomeric purities obtained were very low. Biological oxidants offered great improvement in a few cases, but not in others. Lately, some very encouraging progress has been made using chiral oxaziridines and peroxometal complexes as oxidants. Newer developments in the use of both chemical oxidants and biological oxidants are described below. [Pg.72]

En gros, the N insertion reactions can be subdivided into a Beckmann type and a Schmidt-type rearrangement part. Furthermore, some photochemical rearrangements of chiral oxaziridines are known to generate a range of optically active lactams. [Pg.155]

These reagents exhibit good stereoselectivity toward chiral reactants, such as acylox-azolidinones.253 Chiral oxaziridine reagents have been developed that can achieve enantioselective oxidation of enolates to a-hydroxyketones.254... [Pg.1141]

Optically active oxaziridines are useful reagents for the enantioselective oxidation of olefins 37 39). The following three preparative methods to make this reagent available have been reported enantioselective oxidation of an imine by (-)-peroxycam-phoric acid 37,38), photocyclization of a nitrone which has a chiral substituent39), and photocyclization of a nitrone in an optically active solvent 39). However, an... [Pg.237]

The use of chiral solvents in this photorearrangment has been shown to promote asymmetric synthesis of oxaziridines,54 and application of the cyclization to highly substituted azoxy compounds provides a route to oxadiaziridines.55... [Pg.249]

The enantioenriched sulfoxide intermediate 72 (R = CH2OH), obtained by asymmetric 5-oxidation with a chiral oxaziridine (89 11 enantiomeric ratio), has provided a highly enantioselective synthesis of the benzothiepin derivative 71 (4R, 5R). The aldehyde intermediate 72 (R = CHO) was cyclized asymmetrically to 71 (4R, 5R) with >98 2 enantiomeric ratio. Base treatment (f-BuOK, -10°C, THF) of the racemic benzothiepin 73... [Pg.354]

TABLE 4-19. Diasteroselective Hydroxylation of Chiral Carboximide Sodium Enolates Using 2-(Phenylsulfonyl)-3-Phenyl-Oxaziridine (141) in THF at — 78°C... [Pg.252]

Oxidation of silyl enol ethers. Oxidation of silyl enol ethers to a-hydroxy aldehydes or ketones is usually effected with w-chloroperbenzoic acid (6, 112). This oxidation can also be effected by epoxidation with 2-(phenylsulfonyl)-3-( p-nitrophenyl) oxaziridine in CHC1, at 25-60° followed by rearrangement to a-silyloxy carbonyl compounds, which are hydrolyzed to the a-hydroxy carbonyl compound (BujNF or H,0 + ). Yields are moderate to high. Oxidation with a chiral 2-arene-sulfonyloxaziridine shows only modest enantioselectivity. [Pg.22]

Hydroxylation of 4-oxo-substituted 1,2-thiazine 99 via the racemic Davis oxaziridine reagent 100 afforded alcohol 101 in good yields. Efforts to produce 101 as a single enantiomer with chiral oxaziridine reagents afforded products with only a modest 46% ee (Equation 9) <2002EJP221>. [Pg.532]


See other pages where Chiral oxaziridines is mentioned: [Pg.36]    [Pg.229]    [Pg.90]    [Pg.72]    [Pg.291]    [Pg.295]    [Pg.130]    [Pg.916]    [Pg.165]    [Pg.165]    [Pg.165]    [Pg.231]    [Pg.72]    [Pg.291]    [Pg.295]    [Pg.1141]    [Pg.251]    [Pg.282]    [Pg.185]    [Pg.351]    [Pg.520]    [Pg.1477]    [Pg.74]    [Pg.36]    [Pg.229]    [Pg.351]    [Pg.520]   
See also in sourсe #XX -- [ Pg.75 ]




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1.2- Oxaziridin

2- oxaziridine

Chiral auxiliaries Davis oxaziridine reagents

Chiral oxaziridines, reactions

Davis chiral oxaziridine reagent

Davis chiral oxaziridines

Oxaziridination

Oxaziridine, chiral

Oxaziridine, chiral

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