The thermal characterization of multi-component systems by enthalpy relaxation

Gerrit ten Brinke *, Lizette Oudhuis , Thomas S. Ellis

*Corresponding author for this work

    Research output: Contribution to journalArticleAcademicpeer-review

    33 Citations (Scopus)
    169 Downloads (Pure)

    Abstract

    The phenomenon of enthalpy relaxation of amorphous glassy polymers has been developed into an analytical tool which can be applied to elucidate phase behavior and morphologically related phenomena of multi-component systems. We have both reviewed the experimental details concerning its application, using differential scanning calorimetry (DSC), and analyzed the theoretical basis for the effectiveness of the technique within the framework of the description by Moynihan and co-workers of relaxation in glassy systems. A summary of the adaption of this model, together with some new relevant examples, to mimic the experimental response of a multi-phase system is also presented. Although the technique was developed initially to examine phase phenomena in mixtures where behavior was difficult to resolve, owing to a close proximity of respective glass transition temperatures, we also document its evolution in addressing different situations including interfacial phenomena in semi-crystalline/amorphous polymer mixtures and block copolymers. Future directions for application of the technique are also briefly considered.

    Original languageEnglish
    Pages (from-to)75-98
    Number of pages24
    JournalThermochimica Acta
    Volume238
    Issue number18
    DOIs
    Publication statusPublished - 15-Jun-1994

    Keywords

    • DIFFERENTIAL SCANNING CALORIMETRY
    • AROMATIC POLYAMIDE BLENDS
    • X-RAY-SCATTERING
    • PHASE-BEHAVIOR
    • POLYMER BLENDS
    • POLY(METHYL METHACRYLATE)
    • POLY(2,6-DIMETHYL-1,4-PHENYLENE OXIDE)
    • POLY(STYRENE-CO-ACRYLONITRILE) BLENDS
    • POLY(CHLOROMETHYL METHACRYLATE)
    • COPOLYMER BLENDS

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