## Abstract Using the analysis of the splitting constants of the ESR spectra, factor are described which affect the stability of free phenoxyls and of phenoxyls co‐ordinated on cobalt, generated by the reaction of __tert__‐butyleperoxyls and 4,4′‐biphenyldiols (1), 4,4′–thiobisphenols (2 and 5), 4,
Radical reactions in the co-ordination sphere of transition metals IX—phenoxy and cyclohexadienonyloxy radicals derived from 2,2′-biphenyldiols and 2,2′-thiobisphenols
✍ Scribed by A. Tkáč; L. Omelka; L. Jiráčková; J. Pospišil
- Publisher
- John Wiley and Sons
- Year
- 1980
- Tongue
- English
- Weight
- 567 KB
- Volume
- 14
- Category
- Article
- ISSN
- 0749-1581
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✦ Synopsis
Abstract
From a series of antioxidants comprising 2,2′‐biphenyldiols, 2,2′‐thiobisphenols and 2,2′‐dithiobisphenol, free phenoxyls were prepared by oxidation with tert‐butylperoxyls co‐ordinated to Co(III) in non‐polar media at ambient temperature. Both the effect of extended conjugation as a consequence of the direct bond between the two aromatic nuclei and, also, the steric effect of alkyl substituents could be observed. In the presence of free tert‐butylperoxyls in excess, primary phenoxyls are transformed into cyclohexadienonyloxyls, which form stable radical complexes with Co(III). A mechanism for the formation of the cyclohexadienonyloxyls is suggested.
📜 SIMILAR VOLUMES
## Abstract The phenoxy radicals obtained from 2,2′‐ and 4,4′‐biphenyldiols show, in nonpolar solvents, symmetrization of the unpaired electron spin density on the two phenyl rings in the temperature range 290–410 K. Below 270 K the paramagnetic systems became diamagnetic. This para‐diamagnetic con
## Abstract Radical species were generated from 4,4′;‐ and 2,2′;‐alkylidenebisphenols during oxidation with free and co‐ordinated [Co(III)]RO~2~^˙^Radicals. This simulates the participation of bisphenolic antioxidants in the process of stabilization of hydrocarbons. Phenoxyls are primarily formed,
## Abstract The formation of a ternary complex between phenols, Co (II)‐acetylacetonate and molecular oxygen has been established at ambient temperature and in non‐polar solvents. After intramolecular electron transfer the transient magnified image radical enhances the homolytic scission of the O