Direct calculation of the hard-sphere crystal/melt interfacial free energy
arXiv:cond-mat/0007001 · doi:10.1103/PhysRevLett.85.4751
Abstract
We present a direct calculation by molecular-dynamics computer simulation of the crystal/melt interfacial free energy, , for a system of hard spheres of diameter . The calculation is performed by thermodynamic integration along a reversible path defined by cleaving, using specially constructed movable hard-sphere walls, separate bulk crystal and fluid systems, which are then merged to form an interface. We find the interfacial free energy to be slightly anisotropic with = 0.62, 0.64 and 0.58 for the (100), (110) and (111) fcc crystal/fluid interfaces, respectively. These values are consistent with earlier density functional calculations and recent experiments measuring the crystal nucleation rates from colloidal fluids of polystyrene spheres that have been interpreted [Marr and Gast, Langmuir {\bf 10}, 1348 (1994)] to give an estimate of for the hard-sphere system of , slightly lower than the directly determined value reported here.
4 pages, 4 figures, submitted to Physical Review Letters
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