The solid-liquid interfacial free energy of close-packed metals: hard spheres and the Turnbull coefficient
arXiv:cond-mat/0106411 · doi:10.1063/1.1391481
Abstract
Largely due to its role in nucleation and crystal-growth, the free energy of the crystal-melt interfacial free energy is an object of considerable interest across a number of scientific disciplines, especially in the materials-, colloid- and atmospheric sciences. Over fifty years ago, Turnbull observed that the interfacial free energies (scaled by the mean interfacial area per particle) of a variety of metallic elements exhibit a linear correlation with the enthalpy of fusion. This correlation provides an important empirical "rule-of-thumb" for estimating interfacial free energies, but lacks a compelling physical explanation. In this work we show that the interfacial free energies for close-packed metals are linearly correlated with the melting temperature, and are therefore primarily entropic in origin. We also show that the slope of this linear relationship can be determined with quantitative accuracy using a hard-sphere model, and that the correlation with the enthalpy of fusion reported by Turnbull follows as a consequence of the fact that the entropy of fusion for close-packed metals is relatively constant.
3 pages, 1 figure, to appear in J. Chem. Phys
Cited by in corpus (14)
- Dynamics on the Way to Forming Glass: Bubbles in Space-time
- Direct calculation of the crystal-melt interfacial free energies for continuous potentials: Application to the Lennard-Jones system
- Homogeneous ice nucleation evaluated for several water models
- Barrier Softening near the onset of Non-Activated Transport in Supercooled Liquids: Implications for Establishing Detailed Connection between Thermodynamic and Kinetic Anomalies in Supercooled Liquids
- Crystallization kinetics of colloidal model suspensions: recent achievements and new perspectives
- Homogeneous ice nucleation in an ab initio machine learning model of water
- Hard sphere crystallization gets rarer with increasing dimension
- Description of hard sphere crystals and crystal-fluid interfaces: a critical comparison between density functional approaches and a phase field crystal model
- Experimental studies of crystal nucleation: metals and colloids
- Why Are Alkali Halide Solid Surfaces Not Wetted By Their Own Melt?
- Solid phase properties and crystallization in simple model systems
- To make a glass - avoid the crystal
- Structure and dynamics of the interface between a binary hard-sphere crystal of NaCl type and its coexisting binary fluid
- Equilibrium Fluid-Crystal Interfacial Free Energy of Bcc-Crystallizing Aqueous Suspensions of Polydisperse Charged Spheres