Atomistic Computer Simulations of the Molecular Structure, Thermodynamics, and Dynamics of Glassy Polymers at Interfaces

Atomistic Computer Simulations of the Molecular Structure, Thermodynamics, and Dynamics of Glassy Polymers at Interfaces
Title Atomistic Computer Simulations of the Molecular Structure, Thermodynamics, and Dynamics of Glassy Polymers at Interfaces PDF eBook
Author Kevin Francis Mansfield
Publisher
Pages 570
Release 1991
Genre
ISBN

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Investigation of Atomistic Simulation of Structural and Dynamic Differences in Glassy and Liquid States of Atactic Poly(Propylene).

Investigation of Atomistic Simulation of Structural and Dynamic Differences in Glassy and Liquid States of Atactic Poly(Propylene).
Title Investigation of Atomistic Simulation of Structural and Dynamic Differences in Glassy and Liquid States of Atactic Poly(Propylene). PDF eBook
Author
Publisher
Pages 36
Release 1989
Genre
ISBN

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Atomistic simulation techniques, in conjunction with experimental and theoretical approaches, have proven themselves to be useful tools for the study of materials. Recent years have seen the first application of a variety of simulation methods to investigating the phenomena occurring in bulk polymers. Among these, possibly the most important and challenging is the glass transition. Despite its significance, the glass transition is still poorly characterized except in a phenomenological manner. For instance, comprehension of how the structure of a polymer glass differs from that of the liquid is limited to the somewhat vaguely defined concept of free volume. It is not known how the volume associated with atoms might be distributed within the polymer or how changes in the distribution are related to the property changes seen at the glass transition. In addition, what other structural changes occur on passing between the liquid and glass states are not known. These questions involve the local atomic level structure and motion of individual or small groups of atoms. Available experimental and theoretical methods are not well suited to investigate these details. Therefore, simulation is the only way to obtain physical insight into these problems at the present time. Reported here are initial results obtained from a series of such computer simulations carried out on a simple vinyl polymer, atactic poly(propylene). Keywords: Computer simulation; Structural relaxations in glassy polymers; Glass transition; Molecular structure; Molecular interactions; Transition phases.

Molecular Dynamics of Glass-Forming Systems

Molecular Dynamics of Glass-Forming Systems
Title Molecular Dynamics of Glass-Forming Systems PDF eBook
Author George Floudas
Publisher Springer Science & Business Media
Pages 183
Release 2010-11-25
Genre Technology & Engineering
ISBN 3642049028

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Pressure is one of the essential thermodynamic variables that, due to some former experimental difficulties, was long known as the “forgotten variable.” But this has changed over the last decade. This book includes the most essential first experiments from the 1960's and reviews the progress made in understanding glass formation with the application of pressure in the last ten years. The systems include amorphous polymers and glass-forming liquids, polypeptides and polymer blends. The thermodynamics of these systems, the relation of the structural relaxation to the chemical specificity, and their present and future potential applications are discussed in detail. The book provides (a) an overview of systems exhibiting glassy behavior in relation to their molecular structure and provides readers with the current state of knowledge on the liquid-to-glass transformation, (b) emphasizes the relation between thermodynamic state and dynamic response and (c) shows that the information on the pressure effects on dynamics can be employed in the design of materials for particular applications. It is meant to serve as an advanced introductory book for scientists and graduate students working or planning to work with dynamics. Several scientific papers dealing with the effects of pressure on dynamics have appeared in leading journals in the fields of physics in the last ten years. The book provides researchers and students new to the field with an overview of the knowledge that has been gained in a coherent and comprehensive way.

Molecular Interfacial Phenomena of Polymers and Biopolymers

Molecular Interfacial Phenomena of Polymers and Biopolymers
Title Molecular Interfacial Phenomena of Polymers and Biopolymers PDF eBook
Author P Chen
Publisher Taylor & Francis US
Pages 712
Release 2005-07-22
Genre Science
ISBN 9781855739284

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This book combines three fundamental areas of interest to the science and engineering community, these being material science, nanotechnology and molecular engineering. Although there have been various results published in this field, there has yet to be a fully comprehensive review. This book covers key research on molecular mechanisms and thermodynamic behaviour of (bio)polymer surfaces and interfaces, from theoretical and experimental perspectives.

Engineered Materials Abstracts

Engineered Materials Abstracts
Title Engineered Materials Abstracts PDF eBook
Author
Publisher
Pages 604
Release 1992-05
Genre Ceramic materials
ISBN

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Molecular Ordering, Structure and Dynamics of Conjugated Polymers at Interfaces: Multiscale Molecular Dynamics Simulations

Molecular Ordering, Structure and Dynamics of Conjugated Polymers at Interfaces: Multiscale Molecular Dynamics Simulations
Title Molecular Ordering, Structure and Dynamics of Conjugated Polymers at Interfaces: Multiscale Molecular Dynamics Simulations PDF eBook
Author Yeneneh Yalew Yimer
Publisher
Pages 168
Release 2014
Genre Monomolecular films
ISBN

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Polymer-based solar cells (PSCs) require significant improvements in efficiency and life time in order to be commercially viable. Interfacial structure and morphology dictate the performance of PSCs, and these properties in turn depend on processing conditions and surface chemistry. To optimize device performance, detailed knowledge of the factors most critical to the molecular-level structure, morphology and dynamics of donor/acceptor systems at interfaces will be necessary. For one promising donor, poly(3-hexylthiophene (P3HT), we have utilized all-atom and coarse-grained molecular dynamics simulations to investigate such properties at liquid/vacuum, solid/liquid and solid/solid interfaces. At liquid/vacuum interfaces, static and dynamic properties of P3HT films and their dependence on temperature and molecular weight were studied. P3HT chains showed ordering through preferential exposure of side-chain at the interface, and surface tension showed strong dependence on temperature and molecular weight. Properties such as self-diffusion coefficients, chain end-to-end distance and torsion autocorrelations were also utilized to quantify the dynamics of the P3HT chains in the film. Both static and dynamic properties of P3HT were found to be in agreement with well-known models for polymers.Subsequent simulations of P3HT/water systems offered insight into the wetting behavior of P3HT and the nature of the solid-liquid interface in crystalline and amorphous P3HT. From contact angle calculations, different P3HT surfaces were determined to be hydrophobic. In the time scale of our simulations, no observable change in the orientation of the P3HT at interfaces was observed.Furthermore, the molecular ordering of P3HT close to substrates is expected to be the key to device performance. Ordering of P3HT chains at the interface can be tuned by altering the substrate surface chemistry. We investigated the effect of surface chemistry on the ordering of P3HT on self-assembled monolayers (SAMs) of n-alkanethiols. The results showed that the ordering of P3HT strongly depends on the P3HT-SAM interactions. The effect of solvent on the P3HT-SAM interactions was also studied. In addition, we characterized the surface properties of pure SAMs on gold 111. The end-functionalized network structure was found to be correlated to the adsorption sites. For P3HT/acceptor systems, all-atom simulations are challenging because of the need to access large spatial and temporal regimes. To overcome this, we developed a coarse-grained model for P3HT based on the all-atom force field. The coarse-grained model showed good agreement with bulk and interfacial properties obtained from the all-atom model and has a great potential for analyzing morphology and dynamics of P3HT/acceptor blends.

Molecular Dynamics Simulation of the Glass Transition and the Deformation Behavior of Amorphous Polymers

Molecular Dynamics Simulation of the Glass Transition and the Deformation Behavior of Amorphous Polymers
Title Molecular Dynamics Simulation of the Glass Transition and the Deformation Behavior of Amorphous Polymers PDF eBook
Author Yang-Lioe
Publisher
Pages 538
Release 1997
Genre Deformations (Mechanics)
ISBN

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