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Microstructure and thermal degradation of poly(ether ketone sulfone) copolymers: 13C NMR and thermogravimetry studies

✍ Scribed by M. Rama Rao; V. Lakshmana Rao


Publisher
John Wiley and Sons
Year
1999
Tongue
English
Weight
189 KB
Volume
74
Category
Article
ISSN
0021-8995

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✦ Synopsis


Microstructure of poly(ether ketone sulfone) copolymers I-V, derived from varying mol proportions of dihydroxy diphenyl sulfone (DHDPS, A) and dihydroxybenzophenone (DHBP, C) with stochiometric amounts of difluorobenzophenone (DFBP, B) was studied by 13 C nuclear magnetic resonance spectroscopy. The results were interpreted in terms of the compositional triads BBB, BBA, ABA, BAB, and AAB because B and C moieties become indistinguishable in the copolymers. Feed ratios calculated from the triad intensities agree well with experimental values, validating the chemical shift assignments. The presence of AAB and BBA triads in polymer II (A : C Ο­ 1 : 0) indicates the occurrence of transetherification reaction during its synthesis. Thermal decomposition characteristics of the copolymers were studied by thermogravimetry. Activation energies for thermal degradation were calculated using Coats-Redfern's method assuming the order of the reaction is 1 and was found to vary from 281 to 193 kJ mol Οͺ1 . A good linear correlation was obtained between activation energy values and BBB triad intensities. These observations were rationalized by consideration of their decomposition mechanisms.


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## Abstract The state diagram of a blend consisting of a copolymer containing ethylene oxide and propylene oxide, P(EO‐__ran__‐PO), and poly(ether sulfone), PES, is constructed by using modulated‐temperature differential scanning calorimetry (MTDSC), __T__~2~ NMR relaxometry, and light scattering.