Impact of size polydispersity on the nature of Lennard-Jones liquids
arXiv:1503.02866 · doi:10.1021/acs.jpcb.5b02329
Abstract
Polydisperse fluids are encountered everywhere in biological and industrial processes. These fluids naturally show a rich phenomenology exhibiting fractionation and shifts in critical point and freezing temperatures. Here, we study the impact of size polydispersity on the basic nature of Lennard-Jones (LJ) liquids, which represent most molecular liquids without hydrogen bonds, via two- and three-dimensional molecular dynamics computer simulations. A single-component liquid constituting spherical particles and interacting via the LJ potential is known to exhibit strong correlations between virial and potential energy equilibrium fluctuations at constant volume. This correlation significantly simplifies the physical description of the liquid, and these liquids are now known as Roskilde-simple (RS) liquids. We show that this simple nature of the single-component LJ liquid is preserved even for very high polydispersities (above 40% polydispersity for the studied uniform distribution). We also investigate isomorphs of moderately polydisperse LJ liquids. Isomorphs are curves in the phase diagram of RS liquids along which structure, dynamics, and some thermodynamic quantities are invariant in dimensionless units. We find that isomorphs are a good approximation even for polydisperse LJ liquids. The theory of isomorphs thus extends readily to multi-component systems and can be used to improve even further the understanding of these intriguing systems.
13 pages, 13 figures
References in corpus (14)
- Accurate determination of crystal structures based on averaged local bond order parameters
- Pressure-energy correlations in liquids. I. Results from computer simulations
- Pressure-energy correlations in liquids. II. Analysis and consequences
- Strong pressure-energy correlations in van der Waals liquids
- Thermodynamic scaling of diffusion in supercooled Lennard-Jones liquids
- Equilibrium phase behavior of polydisperse hard spheres
- Unexpected drop of dynamical heterogeneities in colloidal suspensions approaching the jamming transition
- Pressure-energy correlations and thermodynamic scaling in viscous Lennard-Jones liquids
- Explaining why simple liquids are quasi-universal
- Density scaling in viscous liquids: From relaxation times to four-point susceptibilities
- Energy Landscape, Anti-Plasticization and Polydispersity Induced Crossover of Heterogeneity in Supercooled Polydisperse Liquids
- NVU perspective on simple liquids' quasiuniversality
- Phase behaviour and particle-size cutoff effects in polydisperse fluids
- Suppression of the rate of growth of dynamic heterogeneities and its relation to the local structure in a supercooled polydisperse liquid
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- Dynamic heterogeneity in polydisperse systems: A comparative study of the role of local structural order parameter and particle size
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- Even strong energy polydispersity does not affect the average structure and dynamics of simple liquids
- Effective structure of a system with continuous polydispersity
- view on energy polydisperse Lennard-Jones systems
- On the choice of diameters in a polydisperse model glassformer: deterministic or stochastic?
- Active-parameter polydispersity in the 2d ABP Yukawa model
- Systems with size and energy polydispersity: from glasses to mosaic crystals
- Isomorphs in nanoconfined liquids