EventsThe 3rd International Online Conference on Polymer Science
Published
This submission belongs to the session S4. Polymer Composites and Nanocomposites of the event The 3rd International Online Conference on Polymer Science
Published date
14 Nov, 2025
Academic Editor
author-avatarAlberto Jiménez Suárez
Citation
Milind Janardan Kulkarni, Arun Kumar Kalkar, Vineeta D. Deshpande, Regime Kinetics of Poly Ethylene Terephthalate/Thermotropic Liquid Crystalline Polymer PET/TLCP Polycomposites, in Proceedings of The 3rd International Online Conference on Polymer Science, 19 November–21 November 2025, MDPI: Basel, Switzerland
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Regime Kinetics of Poly Ethylene Terephthalate/Thermotropic Liquid Crystalline Polymer PET/TLCP Polycomposites

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Arun Kumar Kalkar 2
Vineeta D. Deshpande 2
1. Department of Physics, R.D.National College affiliated with University of Mumbai, Mumbai, Maharashtra, India, India
2. Department of Physics, Institute of Chemical Technology, Mumbai, Maharashtra 400019, India, India
Abstract

Abstract:

The crystallization behavior of polyethylene terephthalate (PET) and PET/Thermotropic liquid crystalline polymer (TLCP) composites was analyzed under isothermal conditions using calorimetric kinetic data, with thermodynamic parameters derived from the Lauritzen–Hoffman (L-H) model. The crystal growth process, dominated by secondary nucleation, deviates from simple spherulitic radial growth, instead reflecting a complex interplay of nucleation and lamellar growth phenomena. The temperature dependence of the linear crystal growth rate (G) follows a biexponential form as per the L-H relation, integrating both segmental transport and thermodynamic driving forces. Through kinetic modelling, values of nucleation constants (Kg), pre-exponential growth factors (G₀), and surface free energies (σ and σₑ) were obtained. The analysis confirmed crystallization in Regime II across all compositions and temperatures studied (195–210°C), characterized by a chain-folding mechanism where growth occurs on pre-existing crystalline substrates. The substrate length (L), estimated via the Lauritzen Z test, increases with TLCP content and crystallization temperature, indicating enhanced nucleation and hindered chain folding in composites. PET/TLCP blends exhibited higher fold surface energy and work of chain folding compared to neat PET, revealing the inhibitory effect of TLCP on PET crystallization kinetics. These findings offer a comprehensive understanding of the crystallization regime transitions and underlying thermodynamics in PET/TLCP systems.

Keywords
Poly Ethylene Terephthalate PET
Thermotropic Liquid Crystalline Polymer TLCP
Isothermal Kinetics
Crystallization
Crystal growth
Nucleation
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