Mapping atomistic to coarse-grained polymer models using automatic simplex optimization to fit structural properties
arXiv:cond-mat/0008338 · doi:10.1021/ma001499k
Abstract
We develop coarse-grained force fields for poly (vinyl alcohol) and poly (acrylic acid) oligomers. In both cases, one monomer is mapped onto a coarse-grained bead. The new force fields are designed to match structural properties such as radial distribution functions of various kinds derived by atomistic simulations of these polymers. The mapping is therefore constructed in a way to take into account as much atomistic information as possible. On the technical side, our approach consists of a simplex algorithm which is used to optimize automatically non-bonded parameters as well as bonded parameters. Besides their similar conformation (only the functional side group differs), poly (acrylic acid) was chosen to be in aqueous solution in contrast to a poly (vinyl alcohol) melt. For poly (vinyl alcohol) a non-optimized bond angle potential turns out to be sufficient in connection with a special, optimized non-bonded potential. No torsional potential has to be applied here. For poly (acrylic acid), we show that each peak of the radial distribution function is usually dominated by some specific model parameter(s). Optimization of the bond angle parameters is essential. The coarse-grained forcefield reproduces the radius of gyration of the atomistic model. As a first application, we use the force field to simulate longer chains and compare the hydrodynamic radius with experimental data.
34 pages, 3 tables, 16 figures
References in corpus (1)
Cited by in corpus (20)
- Perspective: Dissipative Particle Dynamics
- Formation of Chain-Folded Structures from Supercooled Polymer Melts
- How does the chain extension of poly (acrylic acid) scale in aqueous solution? A combined study with light scattering and computer simulation
- Systematic coarse-graining of the dynamics of entangled polymer melts: the road from chemistry to rheology
- Automatic Coarse Graining of Polymers
- Mechanical properties of carbon nanotube reinforced polymer nanocomposites: A coarse-grained model
- Corrections to Scaling in the Hydrodynamic Properties of Dilute Polymer Solutions
- Tensile fracture behavior of short carbon nanotube reinforced polymer composites: A coarse-grained model
- Properties of Poly (isoprene) - Model Building in the Melt and in Solution
- Coarse-grained model of the J-integral of carbon nanotube reinforced polymer composites
- A coarse-grained model for the elastic properties of cross linked short carbon nanotube/polymer composites
- Dynamical properties across different coarse-grained models for ionic liquids
- Numerical calculation of free-energy barriers for entangled polymer nucleation
- Static and dynamic scaling behavior of a polymer melt model with triple-well bending potential
- Coarse-grained Models of Aqueous Solutions of Polyelectrolytes: Significance of Explicit Charges
- Non-conformal coarse-grained potentials for water
- Effect of nematic ordering on the elasticity and yielding in disordered polymeric solids
- Multi-scale modeling of poly(isoprene) melts
- Structure/property relationship of semi-crystalline polymer during tensile deformation: A molecular dynamics approach
- Self-averaging parameter estimation for coarse-grained particle models