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Fabrication of Large-area Free-standing Ultrathin Polymer Films
Published on: June 3, 2015
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Interfacial Dynamics in Supported Ultrathin Polymer Films-From the Solid to the Free Interface
Emmanuel Urandu Mapesa1, Nobahar Shahidi1, Friedrich Kremer2
1Department of Chemical and Biomolecular Engineering, University of Tennessee Knoxville, 1512 Middle Drive, Knoxville, Tennessee 37996, United States.
The Journal of Physical Chemistry Letters
|December 14, 2020
Summary
Molecular dynamics in ultrathin polymer films exhibit bulklike segmental relaxation down to 12 nm. However, interfacial regions show modified mobilities with non-Arrhenius temperature activation, impacting polymer applications.
Area of Science:
- Polymer Physics
- Materials Science
- Surface Science
Background:
- Understanding molecular dynamics in thin polymer films is crucial for advanced material applications.
- Interfacial effects significantly influence polymer behavior, deviating from bulk properties.
Purpose of the Study:
- To investigate molecular dynamics in ultrathin polymer layers.
- To characterize relaxation times and mobilities in interfacial zones.
- To determine the temperature dependence of molecular motion near interfaces.
Main Methods:
- Broadband dielectric spectroscopy using nanostructured electrodes.
- Atomistic molecular dynamics simulations.
- Analysis of relaxation time distributions above the glass transition temperature (Tg).
Main Results:
- Segmental relaxation rates remain bulklike down to 12 nm film thickness.
- Modified molecular mobilities are observed in interfacial zones (~1.5 nm each).
- Both adsorbed and free interface segments exhibit non-Arrhenius temperature activation.
Conclusions:
- Interfacial regions in ultrathin polymer films display distinct molecular dynamics.
- Non-Arrhenius behavior of interfacial segments is independent of molecular weight and film thickness.
- Findings are relevant for polymer applications in adhesion, coatings, and nanocomposites.

