JOURNAL ARTICLE

Glass transition temperature of (ultra-)thin polymer films

Hsiao‐Ping HsuKurt Kremer

Year: 2023 Journal:   The Journal of Chemical Physics Vol: 159 (7)   Publisher: American Institute of Physics

Abstract

The glass transition temperature of confined and free-standing polymer films of varying thickness is studied by extended molecular dynamics simulations of bead–spring chains. The results are connected to the statistical properties of the polymers in the films, where the chain lengths range from short, unentangled to highly entangled. For confined films, perfect scaling of the thickness-dependent end-to-end distance and radius of gyrations normalized to their bulk values in the directions parallel and perpendicular to the surfaces is obtained. In particular, the reduced end-to-end distance in the perpendicular direction is very well described by an extended Silberberg model. For bulk polymer melts, the relation between the chain length and Tg follows the Fox–Flory equation. For films, no further confinement induced chain length effect is observed. Tg decreases and is well described by Keddie’s formula, where the reduction is more pronounced for free-standing films. It is shown that Tg begins to deviate from bulk Tg at the characteristic film thickness, where the average bond orientation becomes anisotropic and the entanglement density decreases.

Keywords:
Glass transition Materials science Polymer Perpendicular Anisotropy RADIUS Chain (unit) Condensed matter physics Diffusion Scaling Bond length Molecular dynamics Length scale Composite material Thermodynamics Optics Crystallography Physics Geometry Chemistry Mechanics Computational chemistry

Metrics

11
Cited By
1.47
FWCI (Field Weighted Citation Impact)
70
Refs
0.75
Citation Normalized Percentile
Is in top 1%
Is in top 10%

Citation History

Topics

Material Dynamics and Properties
Physical Sciences →  Materials Science →  Materials Chemistry
Theoretical and Computational Physics
Physical Sciences →  Physics and Astronomy →  Condensed Matter Physics
Phase Equilibria and Thermodynamics
Physical Sciences →  Engineering →  Biomedical Engineering

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