Multiscale approach to equilibrating model polymer melts
arXiv:1606.00609 · doi:10.1103/PhysRevE.94.032502
Abstract
We present an effective and simple multiscale method for equilibrating Kremer Grest model polymer melts of varying stiffness. In our approach, we progressively equilibrate the melt structure above the tube scale, inside the tube and finally at the monomeric scale. We make use of models designed to be computationally effective at each scale. Density fluctuations in the melt structure above the tube scale are minimized through a Monte Carlo simulated annealing of a lattice polymer model. Subsequently the melt structure below the tube scale is equilibrated via the Rouse dynamics of a force-capped Kremer-Grest model that allows chains to partially interpenetrate. Finally the Kremer-Grest force field is introduced to freeze the topological state and enforce correct monomer packing. We generate melts of chains of beads for varying chain stiffness as well as a number of melts with chains of monomers. To validate the equilibration process we study the time evolution of bulk, collective and single-chain observables at the monomeric, mesoscopic and macroscopic length scales. Extension of the present method to longer, branched or polydisperse chains and/or larger system sizes is straight forward.
References in corpus (6)
- Intramolecular long-range correlations in polymer melts: The segmental size distribution and its moments
- Viscoelasticity and primitive path analysis of entangled polymer liquids: From f-actin to polyethylene
- Equilibration of High Molecular-Weight Polymer Melts: A Hierarchical Strategy
- Intramolecular Form Factor in Dense Polymer Systems: Systematic Deviations from the Debye formula
- Static Rouse Modes and Related Quantities: Corrections to Chain Ideality in Polymer Melts
- One size fits all: equilibrating chemically different polymer liquids through universal long-wavelength description
Cited by in corpus (10)
- Kremer-Grest models for commodity polymer melts: Linking theory, experiment and simulation at the Kuhn scale
- Characteristic time and length scales in melts of Kremer-Grest bead-spring polymers with wormlike bending stiffness
- Computational study of the cross-link and the entanglement contributions to the elastic properties of model PDMS networks
- DNA supercoiling in bacteria: state of play and challenges from a viewpoint of physics based modeling
- Local loop opening in untangled ring polymer melts: A detailed "Feynman test" of models for the large scale structure
- Facile equilibration of well-entangled semiflexible bead-spring polymer melts
- Multiscale equilibration of highly entangled isotropic model polymer melts
- Kremer-Grest models for universal properties of specific common polymer species
- Modeling elastic properties of polystyrene through coarse-grained molecular dynamics simulations
- Hierarchical modeling of polystyrene melts: From soft blobs to atomistic resolution