Quantitative understanding of two distinct melting kinetics of an isothermally crystallized poly(ether ether ketone)

The multiple melting peaks of isothermally crystallized poly(ether ether ketone) were investigated by fast-scanning chip calorimetry over a wide range of heating rates from 500 to 60,000 K s−1. The analysis of heating rate dependence of melting temperatures revealed that there are two crystal popula...

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Published inPolymer (Guilford) Vol. 99; pp. 97 - 104
Main Authors Furushima, Yoshitomo, Toda, Akihiko, Rousseaux, Vincent, Bailly, Christian, Zhuravlev, Evgeny, Schick, Christoph
Format Journal Article
LanguageEnglish
Published Elsevier Ltd 02.09.2016
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Summary:The multiple melting peaks of isothermally crystallized poly(ether ether ketone) were investigated by fast-scanning chip calorimetry over a wide range of heating rates from 500 to 60,000 K s−1. The analysis of heating rate dependence of melting temperatures revealed that there are two crystal populations with distinct melting kinetics for the samples prepared at different crystallization temperatures, 170 °C ≤ Tiso ≤ 270 °C. For each Tiso, the two melting temperatures of the metastable crystals without prior reorganization or superheating (i.e. zero-entropy-production melting temperatures) were constantly 20 K and 30 K, respectively, higher than Tiso. We first discuss this behavior quantitatively based on the Lauritzen-Hoffman nucleation approach. Finally we conclude that these increases in temperature are linked to the number of stems which construct the secondary surface nuclei. The existence of two crystal populations can be caused by differences in the stability of the crystal or “local” differences in the free energy of the surrounding melt. [Display omitted] •Two distinct melting kinetics of isothermally crystallized PEEK is observed.•ZEP melting temperature is higher than annealing temperature at a constant value.•Number of stem of surface nuclei is determined from the Lauritzen-Hoffman approach.
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ISSN:0032-3861
1873-2291
DOI:10.1016/j.polymer.2016.07.005