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arXiv · 1501.01552

Finite size effects on liquid-solid phase coexistence and the estimation of crystal nucleation barriers

Abstract

A fluid in equilibrium in a finite volume $V$ with particle number $N$ at a density $ρ= N/V$ exceeding the onset density $ρ_f $ of freezing may exhibit phase coexistence between a crystalline nucleus and surrounding fluid. Using a method suitable for the estimation of the chemical potential of dense fluids we obtain the excess free energy due to the surface of the crystalline nucleus. There is neither a need to precisely locate the interface nor to compute the (anisotropic) interfacial tension. As a test case, a soft version of the Asakura-Oosawa model for colloid polymer-mixtures is treated. While our analysis is appropriate for crystal nuclei of arbitrary shape, we find the nucleation barrier to be compatible with a spherical shape, and consistent with classical nucleation theory.

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Antonia Statt, Peter Virnau, Kurt Binder. 2015-01-07. Finite size effects on liquid-solid phase coexistence and the estimation of crystal nucleation barriers. https://doi.org/10.1103/physrevlett.114.026101

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