Influence of Crosslinking and Deformation on Polymer Crystallization and Melting: A Molecular Dynamics Study

Abstract We investigate the crystallization of crosslinked and entangled polymers under external deformation using a coarse-grained poly(vinyl alcohol) (CG-PVA) model and molecular dynamics simulations. Following uniaxial deformation, the systems are cooled at a constant rate to form semicrystalline states and subsequently heated at a constant rate to induce melting. For unstretched systems, network junctions do not significantly affect the nucleation temperature but increase the amorphous fraction and reduce the melting temperature. Uniaxial deformation accelerates nucleation and markedly increases the crystallization temperature, with more strongly crosslinked polymers exhibiting larger shifts that correlate with an enhanced orientation order parameter. We further compare cooling and heating cycles under constant strain and constant stress conditions. Under constant stress, crystallization induces additional elongation beyond the initial pre-stretch and leads to pronounced mechanical hysteresis upon heating, a behavior characteristic of reversible shape-memory materials.

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Publication Details

Journal
Macromolecules
Published
2026-09-15
DOI
https://doi.org/10.1021/acs.macromol.6c00181
Primary Topic
Polymer composites and self-healing
Type
article
Field-Weighted Citation Impact
0.00

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article

Influence of Crosslinking and Deformation on Polymer Crystallization and Melting: A Molecular Dynamics Study

Marco Werner, Huzaifa Shabbir, Jens-Uwe Sommer, Atmika Bhardwaj
Macromolecules
Polymer composites and self-healing
article

Influence of Crosslinking and Deformation on Polymer Crystallization and Melting: A Molecular Dynamics Study

Marco Werner, Huzaifa Shabbir, Jens-Uwe Sommer, Atmika Bhardwaj
article en

Abstract

Abstract We investigate the crystallization of crosslinked and entangled polymers under external deformation using a coarse-grained poly(vinyl alcohol) (CG-PVA) model and molecular dynamics simulations. Following uniaxial deformation, the systems are cooled at a constant rate to form semicrystalline states and subsequently heated at a constant rate to induce melting. For unstretched systems, network junctions do not significantly affect the nucleation temperature but increase the amorphous fraction and reduce the melting temperature. Uniaxial deformation accelerates nucleation and markedly increases the crystallization temperature, with more strongly crosslinked polymers exhibiting larger shifts that correlate with an enhanced orientation order parameter. We further compare cooling and heating cycles under constant strain and constant stress conditions. Under constant stress, crystallization induces additional elongation beyond the initial pre-stretch and leads to pronounced mechanical hysteresis upon heating, a behavior characteristic of reversible shape-memory materials.

Macromolecules
Leibniz Institute of Polymer Research (DE), Technische Universität Dresden (DE)
Deutsche Forschungsgemeinschaft
Openalex Percentile: Top 97%
Polymer composites and self-healing
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Influence of Crosslinking and Deformation on Polymer Crystallization and Melting: A Molecular Dynamics Study — Marco Werner, Huzaifa Shabbir, et al. · Macromolecules (2026) | TGRS Research Map | TGRS