Angle-resolved effective potentials for disk-shaped molecules
arXiv:1407.4352 · doi:10.1063/1.4902824
Abstract
We present an approach for calculating coarse-grained angle-resolved effective pair potentials for uniaxial molecules. For integrating out the intramolecular degrees of freedom we apply umbrella sampling and steered dynamics techniques in atomistically-resolved molecular dynamics (MD) computer simulations. Throughout this study we focus on disk-like molecules such as coronene. To develop the methods we focus on integrating out the van-der-Waals and intramolecular interactions, while electrostatic charge contributions are neglected. The resulting coarse-grained pair potential reveals a strong temperature and angle dependence. In the next step we fit the numerical data with various Gay-Berne-like potentials to be used in more efficient simulations on larger scales. The quality of the resulting coarse-grained results is evaluated by comparing their pair and many-body structure as well as some thermodynamic quantities self-consistently to the outcome of atomistic MD simulations of many-particle systems. We find that angle-resolved potentials are essential not only to accurately describe crystal structures but also for fluid systems where simple isotropic potentials start to fail already for low to moderate packing fractions. Further, in describing these states it is crucial to take into account the pronounced temperature dependence arising in selected pair configurations due to bending fluctuations.
18 pages, 10 figures
References in corpus (2)
Cited by in corpus (5)
- An Anisotropic Effective Model for the Simulation of Semiflexible Ring Polymers
- Coarse-grained electrostatic interactions of coronene: Towards the crystalline phase
- Equilibrium structures of anisometric, quadrupolar particles confined to a monolayer
- Coarse-graining strategy for molecular pair interactions: A reaction coordinate study for two- and three-dimensional systems
- Coarse-graining strategy for modeling effective, highly diffusive fluids with reduced polydispersity: A dynamical study