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Fundamentals of Phase Separation in Polymer Blend Thin Films

โœ Scribed by Sam Coveney (auth.)


Publisher
Springer International Publishing
Year
2015
Tongue
English
Leaves
179
Series
Springer Theses
Edition
1
Category
Library

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โœฆ Synopsis


This work sheds new light on fundamental aspects of phase separation in polymer-blend thin films. A key feature underlying the theoretical models is the unification of one-dimensional thermodynamic phase equilibria with film evolution phenomena in two- and three dimensions. Initially, an established 'phase portrait' method, useful for visualising and calculating phase equilibria of polymer-blend films, is generalised to systems without convenient simplifying symmetries. Thermodynamic equilibria alone are then used to explain a film roughening mechanism in which laterally coexisting phases can have different depths in order to minimise free energy. The phase portraits are then utilised to demonstrate that simulations of lateral phase separation via a transient wetting layer, which conform very well with experiments, can be satisfactorily explained by 1D phase equilibria and a 'surface bifurcation' mechanism. Lastly, a novel 3D model of coupled phase separation and dewetting is developed, which demonstrates that surface roughening shadows phase separation in thin films.

โœฆ Table of Contents


Front Matter....Pages i-xvi
Introduction....Pages 1-6
Development of Theory for Bulk Polymer Blend Systems....Pages 7-34
Development of Theory for Polymer-Blend Thin Films....Pages 35-53
Hamiltonian Phase Portraits for Polymer-Blend Thin Films....Pages 55-82
Lateral Phase Separation via Surface Bifurcation....Pages 83-119
A 3D Model of Phase Separation Coupled to Surface Roughening....Pages 121-140
Summary of Research and Outlook....Pages 141-144
Back Matter....Pages 145-171

โœฆ Subjects


Phase Transitions and Multiphase Systems; Thermodynamics; Surfaces and Interfaces, Thin Films; Polymer Sciences; Surface and Interface Science, Thin Films


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