Glass transition of polymers in bulk, confined geometries, and near interfaces
Стеклование полимеров в объёме, ограниченной геометрии и вблизи интерфейсов
2017-01-30
SCID: 54.1/p35t9xbd
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Debye-Waller factormolecular relaxation dynamicsnanoconfinementpolymer glass transitionvitrification temperature
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Abstract (AI)
When cooled or pressurized, polymer melts exhibit a tremendous reduction in molecular mobility. If the process is performed at a constant rate, the structural relaxation time of the liquid eventually exceeds the time allowed for equilibration. This brings the system out of equilibrium, and the liquid is operationally defined as a glass-a solid lacking long-range order. Despite almost 100 years of research on the (liquid/)glass transition, it is not yet clear which molecular mechanisms are responsible for the unique slow-down in molecular dynamics. In this review, we first introduce the reader to experimental methodologies, theories, and simulations of glassy polymer dynamics and vitrification. We then analyse the impact of connectivity, structure, and chain environment on molecular motion at the length scale of a few monomers, as well as how macromolecular architecture affects the glass transition of non-linear polymers. We then discuss a revised picture of nanoconfinement, going beyond a simple picture based on interfacial interactions and surface/volume ratio. Analysis of a large body of experimental evidence, results from molecular simulations, and predictions from theory supports, instead, a more complex framework where other parameters are relevant. We focus discussion specifically on local order, free volume, irreversible chain adsorption, the Debye-Waller factor of confined and confining media, chain rigidity, and the absolute value of the vitrification temperature. We end by highlighting the molecular origin of distributions in relaxation times and glass transition temperatures which exceed, by far, the size of a chain. Fast relaxation modes, almost universally present at the free surface between polymer and air, are also remarked upon. These modes relax at rates far larger than those characteristic of glassy dynamics in bulk. We speculate on how these may be a signature of unique relaxation processes occurring in confined or heterogeneous polymeric systems.
Key Findings
1
Distributions of polymer relaxation times and glass-transition temperatures can greatly exceed the size of an individual chain, indicating collective or heterogeneous molecular origins.
2
Nanoconfinement cannot be explained solely by interfacial interactions or surface-to-volume ratio; local order, free volume, irreversible adsorption, Debye-Waller factors, chain rigidity, and vitrification temperature are also important.
3
Polymer free surfaces almost universally exhibit fast relaxation modes that are much faster than bulk glassy dynamics and may signal distinctive relaxation processes in confined or heterogeneous systems.
4
Polymer molecular mobility at few-monomer length scales depends on connectivity, structure, and chain environment, while macromolecular architecture controls glass transitions in nonlinear polymers.
5
Polymer vitrification occurs when structural relaxation times exceed the experimental equilibration time during cooling or pressurization, driving the liquid out of equilibrium.
Research Object
Polymer melts and glasses in bulk, confined geometries, and near interfaces
Research Subject
Molecular mechanisms and relaxation dynamics underlying vitrification and the glass transition, including effects of connectivity, chain architecture, local structure, confinement, interfaces, free volume, adsorption, rigidity, and relaxation-time and glass-transition-temperature distributions
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2017-01-30
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