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Phenoxyls

Tripathi G N R and Schuler R H 1984 The resonance Raman spectrum of phenoxyl radical J. Chem. Phys. 81 113-21... [Pg.1227]

The effect substitution on the phenolic ring has on activity has been the subject of several studies (11—13). Hindering the phenolic hydroxyl group with at least one bulky alkyl group ia the ortho position appears necessary for high antioxidant activity. Neatly all commercial antioxidants are hindered ia this manner. Steric hindrance decreases the ability of a phenoxyl radical to abstract a hydrogen atom from the substrate and thus produces an alkyl radical (14) capable of initiating oxidation (eq. 18). [Pg.224]

Quinoxalinyl, 4-cinnolinyl, and 1-phthalazinyl derivatives, which are all activated by a combination of induction and resonance, have very similar kinetic characteristics (Table XV, p. 352) in ethoxylation and piperidination, but 2-chloroquinoxaline is stated (no data) to be more slowly phenoxylated. In nucleophilic substitution of methoxy groups with ethoxy or isopropoxy groups, the quinoxaline compound is less reactive than the cinnoline and phthalazine derivatives and more reactive than the quinoline and isoquinoline analogs. 2-Chloroquinoxaline is more reactive than its monocyclic analog, 2-chloropyrazine, with thiourea or with piperidine (Scheme VI, p. 350). [Pg.375]

Chemical Name 2-(4-(4-Chloroben2oyl)phenoxyl-2-methylpropanoic acid-1-methylethyl ester... [Pg.626]

Allyl (27, 60, 119-125) and benzyl (26, 27, 60, 121, 125-133) radicals have been studied intensively. Other theoretical studies have concerned pentadienyl (60,124), triphenylmethyl-type radicals (27), odd polyenes and odd a,w-diphenylpolyenes (60), radicals of the benzyl and phenalenyl types (60), cyclohexadienyl and a-hydronaphthyl (134), radical ions of nonalternant hydrocarbons (11, 135), radical anions derived from nitroso- and nitrobenzene, benzonitrile, and four polycyanobenzenes (10), anilino and phenoxyl radicals (130), tetramethyl-p-phenylenediamine radical cation (56), tetracyanoquinodi-methane radical anion (62), perfluoro-2,l,3-benzoselenadiazole radical anion (136), 0-protonated neutral aromatic ketyl radicals (137), benzene cation (138), benzene anion (139-141), paracyclophane radical anion (141), sulfur-containing conjugated radicals (142), nitrogen-containing violenes (143), and p-semi-quinones (17, 144, 145). Some representative results are presented in Figure 12. [Pg.359]

Rapid oxidation by acidic hexachloriridate of phenol and 2,6-dimethylphenol takes place to give the corresponding phenoxyl radical . At low Ir(iri) concen-... [Pg.402]

Trisacetylacetonecobalt(III) oxidises phenols to phenoxyl radicals at 71-120 °C in chlorobenzene with simple second-order kinetics, E = 33 kcal.mole" and AS = 13.6 eu) . When 2,4,6-tcrt-butylphenol was employed, the characteristic ESR spectrum of the phenoxyl radical was obtained with an intensity corresponding to almost quantitative conversion, viz. [Pg.403]

Fig. 16.4 Interaction between quercetin (Quer) and iron and the balance between pro-oxidative and antioxidative effects. Quercetin may reduce Fe(H20) to yield Fe(H20) active in the Fenton region forming hydroxyl radicals ( OFI) or alkoxyl radicals ( OR), in effect being pro-oxidative. In contrast, quercetin may form a complex with iron(II), inactive in reducing FI2O2 to OFI, but rather oxidised in the quercetin ligand, in effect being antioxidative. Quer (-H) is the phenoxyl radical. Fig. 16.4 Interaction between quercetin (Quer) and iron and the balance between pro-oxidative and antioxidative effects. Quercetin may reduce Fe(H20) to yield Fe(H20) active in the Fenton region forming hydroxyl radicals ( OFI) or alkoxyl radicals ( OR), in effect being pro-oxidative. In contrast, quercetin may form a complex with iron(II), inactive in reducing FI2O2 to OFI, but rather oxidised in the quercetin ligand, in effect being antioxidative. Quer (-H) is the phenoxyl radical.
The electron transfer mechanism for antioxidant activity corresponding to eq. 16.5 makes the standard reduction potentials of interest for evaluation of antioxidative activity. The standard reduction potential of the phenoxyl radical of several flavonoids has been determined and forms the basis for correlation of rate of electron transfer for various oxidants from the flavonoid (Jovanovic etal., 1997 Jorgensen and Skibsted, 1998). The standard reduction potentials have also been used to establish antioxidant hierarchies. [Pg.324]

The reaction of eq. 16.9 will regenerate the antioxidant Arj-OH at the expense of the antioxidant At2-OH. Despite the fact that such regeneration reactions are not simple electron transfer reactions, the rate of reactions like that of eq. 16.9 has been correlated with the E values for the respective Ar-0. Thermodynamic and kinetic effects have not been clearly separated for such hierarchies, but for a number of flavonoids the following pecking order was established in dimethyl formamid (DMF) by a combination of electrolysis for generating the a-tocopherol and the flavonoid phenoxyl radicals and electron spin resonance (ESR) spectroscopy for detection of these radicals (Jorgensen et al, 1999) ... [Pg.324]

Fig. 16.5 Synergistic regeneration of a-tocopherol by quercetin at a lipid-water interphase. a-tocopherol is reacting with a lipid peroxyl radical in a chain-breaking reaction. According to the standard reduction potential, the phenoxyl radical of quercetin can further be regenerated by ascorbate. Fig. 16.5 Synergistic regeneration of a-tocopherol by quercetin at a lipid-water interphase. a-tocopherol is reacting with a lipid peroxyl radical in a chain-breaking reaction. According to the standard reduction potential, the phenoxyl radical of quercetin can further be regenerated by ascorbate.
TTx represents the hydrophobicity of the substituents at position 10. Its positive coefficient (+0.75) suggests that the presence of highly hydrophobic substituents at position 10 increases the activity. The outlier (X = OH) is much more active than expected by 11 times the standard deviation. This may be due to the formation of a phenoxyl radical that interacts with DNA [48]. The other derivative (X = NH2) is also considered as an outher due to being much more active than expected by 14 times the standard deviation. This anomalous behavior may be attributed to its nature as an aniline. This could result in hydrogen abstraction, or involve microsomal N-oxidation [48,49]. [Pg.51]

Kalyanaraman, B., Darley-Usmar, V.M., Wood, J., Joseph, J. and Parathasarathy, S. (1992). Synergistic interaction between the probucol phenoxyl radical and ascorbic acid in inhibiting the oxidation of LDL. J. Biol. Chem. 267, 6789—6795. [Pg.35]

Compound 1 (Fig. 18.18) reversibly forms an analogous ferric-superoxo/Cu adduct at 60 °C, as demonstrated by resonance Raman spectroscopy. However, warming the sample to 40 °C results in a rapid four-electron reduction of the bound O2 ligand, generating a ferryl/Cu /phenoxyl radical derivative (Fig. 18.18) [Collman et al., 2007a]. [Pg.679]

The spin density of tocopheroxyl radical 2, a classical phenoxyl radical, is mainly concentrated at oxygen 0-6, which is the major position for coupling with other C-centered radicals, leading to chromanyl ethers 5. These products are found in the typical lipid peroxidation scenarios. Also at ortho- and para-positions of the aromatic ring, the spin density is increased. At these carbon atoms, coupling with other radicals, especially O-centered ones, proceeds. Mainly the para-position (C-8a) is involved (Fig. 6.3), leading to differently 8a-substituted chromanones 6. [Pg.165]

Also for the reaction that was described as dimerization of the chromanol methide radicals 10 to the ethano-dimer of a-tocopherol 12, the involvement of the C-centered radicals has been disproven and these intermediates lost their role as key intermediates in favor of the o-QM 3. It was experimentally shown that ethano-dimer 12 in hydroperoxide reaction mixtures of a-tocopherol was formed according to a more complex pathway involving the reduction of the spiro dimer 9 by a-tocopheroxy 1 radicals 2, which can also be replaced by other phenoxyl radicals (Fig. 6.10).11 Neither the hydroperoxides themselves, nor radical initiators such as AIBN, nor tocopherol alone were able to perform this reaction, but combinations of tocopherol with radical initiators generating a high flux of tocopheroxyl radicals 2 afforded high yields of the ethano-dimer 12 from the spiro dimer 9. [Pg.172]

Chloromethylatlon of 2,2-bls[4 -(4"-phenylsulfonylphenoxyl)phenyl] propane. A solution of 7, 40 g (0.06 mol) was blended with 400 mL of 6 M chloromethyl methyl ether solution and 0.7 mL (6 mmol) of SnCl4 in a 500 mL resin kettle, and the mixture was refluxed for 8 h under argon. The solvent was distilled until the volume was reduced to 20 mL and 300 mL of ethanol was added to produce a clear solution. The product, 2,2-bis[3-chloromethyl-4-(4-phenylsulfonyl-phenoxyl)phenyl]propane, 11, crystallized from the ice cooled solution, 40.2 g (87%) mp 182-83°C was isolated by filtration. [Pg.10]

The central feature of this mechanism is, therefore, that the phenoxyl radical is reversibly reduced and re-oxidised this leads to the continuous consumption of macroalkyl radicals. The phenoxyl radical can, therefore, react with polypropylene radicals and compete with PP-MA adduct formation in the stabilised polymer (Figure 3, curve MA-S). [Pg.421]

Propane, 2,2-bis[4 -(4"-phenylsulfonyl-phenoxyl)phenyl] bromination, 9 13C NMR, 9 chloromethylation, 10 nitration, 9 preparation, 9 reduction, 10... [Pg.482]


See other pages where Phenoxyls is mentioned: [Pg.302]    [Pg.41]    [Pg.243]    [Pg.362]    [Pg.370]    [Pg.372]    [Pg.13]    [Pg.106]    [Pg.212]    [Pg.435]    [Pg.323]    [Pg.329]    [Pg.26]    [Pg.643]    [Pg.646]    [Pg.549]    [Pg.7]    [Pg.185]    [Pg.4]    [Pg.9]    [Pg.421]    [Pg.482]    [Pg.670]    [Pg.61]    [Pg.377]   
See also in sourсe #XX -- [ Pg.120 ]

See also in sourсe #XX -- [ Pg.385 ]




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Absorption spectra, phenoxyl radicals

Alcohol reactivity, phenoxyl radical

Aldehyde formation, phenoxyl radical

Copper phenoxyl radical

Cu -phenoxyl radical

General Structural and Synthetic Interest in the Phenoxyl Group

Hyperfine coupling, phenoxyl radical

Ketone formation, phenoxyl radical

Lignins phenoxyl radicals

Phenol-derived phenoxyl radicals

Phenoxyl

Phenoxyl

Phenoxyl end-capping method

Phenoxyl formation

Phenoxyl groups

Phenoxyl radical metal complexes

Phenoxyl radical metal complexes compounds

Phenoxyl radical metalloenzymes

Phenoxyl radicals

Phenoxyl radicals addition complexes

Phenoxyl radicals addition reactions

Phenoxyl radicals chromium complexes

Phenoxyl radicals cobalt complexes

Phenoxyl radicals coordination number

Phenoxyl radicals copper complexes

Phenoxyl radicals dissociation

Phenoxyl radicals electronic transitions

Phenoxyl radicals iron complexes

Phenoxyl radicals manganese complexes

Phenoxyl radicals polymerization processes

Phenoxyl radicals uncoordinated complexes

Phenoxyl radicals zinc complexes

Phenoxyl radicals zince complexes

Phenoxyl reduction potential

Phenoxyl-carbon bond

Phenoxyl-hydrogen bond

Phenoxyls peroxides

Protonation, phenoxyl radical coordination

Radical peroxyl tyrosine phenoxyl

Reactivity mechanisms, phenoxyl complexes

Stoichiometric reactions, phenoxyl radical

Structure-Spectral Relationships Phenoxyl Radicals

Tert-Butylated phenoxyl

Tyrosine phenoxyl

Tyrosine-phenoxyl radical

Uncoordinated phenoxyl radicals

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