Publication | Closed Access
Molecular modeling of polycarbonate materials: Glass transition and mechanical properties
21
Citations
46
References
2017
Year
EngineeringGlass-forming LiquidMechanical EngineeringMaterial SimulationChemistryAccessible Macroscopic PropertiesSoft MatterMolecular DynamicsDynamic BehaviorGlass TransitionPolymer PhysicBiophysicsPolymer ChemistryMaterials SciencePolymer MeltNatural SciencesMacroscopic PropertiesPolymer SciencePolymer PropertyPolymer ModelingPolycarbonate MaterialsMultiscale Modeling
Linking the experimentally accessible macroscopic properties of thermoplastic polymers to their microscopic static and dynamic properties is a key requirement for targeted material design. Classical molecular dynamics simulations enable us to study the structural and dynamic behavior of molecules on microscopic scales, and statistical physics provides a framework for relating these properties to the macroscopic properties. We take a first step toward creating an automated workflow for the theoretical prediction of thermoplastic material properties by developing an expeditious method for parameterizing a simple yet surprisingly powerful coarse-grained bisphenol-A polycarbonate model which goes beyond previous coarse-grained models and successfully reproduces the thermal expansion behavior, the glass transition temperature as a function of the molecular weight, and several elastic properties.
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