Softness dependence of the Anomalies for the Continuous Shouldered Well potential
Pol Vilaseca, Giancarlo Franzese

TL;DR
This study uses molecular dynamics to explore how the softness of a core-softened potential influences water-like anomalies in a fluid, revealing that increased steepness contracts certain anomalous regions and affects structural behavior.
Contribution
It introduces a generalized criterion for predicting density and diffusion anomalies in continuous two-scale potentials based on structural analysis beyond the first two coordination shells.
Findings
Steeper potentials contract density and diffusion anomaly regions.
Structural anomalies are weakly affected by potential softness.
Anomalous behavior is influenced by structural order up to the fourth shell.
Abstract
By molecular dynamic simulations we study a system of particles interacting through a continuous isotropic pairwise core-softened potential consisting of a repulsive shoulder and an attractive well. The model displays a phase diagram with three fluid phases, a gas-liquid critical point, a liquid-liquid critical point, and anomalies in density, diffusion and structure. The hierarchy of the anomalies is the same as for water. We study the effect on the anomalies of varying the softness of the potential. We find that, making the soft-core steeper, the regions of density and diffusion anomalies contract in the T - {\rho} plane, while the region of structural anomaly is weakly affected. Therefore, a liquid can have anomalous structural behavior without density or diffusion anomalies. We show that, by considering as effective distances those corresponding to the maxima of the first two peaks…
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