ENTROPY-DRIVEN FORMATION OF A SUPERLATTICE IN A HARD-SPHERE BINARY MIXTURE

Citation
Md. Eldridge et al., ENTROPY-DRIVEN FORMATION OF A SUPERLATTICE IN A HARD-SPHERE BINARY MIXTURE, Nature, 365(6441), 1993, pp. 35-37
Citations number
19
Categorie Soggetti
Multidisciplinary Sciences
Journal title
NatureACNP
ISSN journal
00280836
Volume
365
Issue
6441
Year of publication
1993
Pages
35 - 37
Database
ISI
SICI code
0028-0836(1993)365:6441<35:EFOASI>2.0.ZU;2-0
Abstract
A MIXTURE of two dissimilar species (A and B) may freeze to form a sub stitutionally ordered crystal, the structure of which can vary from a lattice with only a few atoms per unit cell to a complex 'superlattice '. For example, a mixture of sodium and zinc can form a solid with the AB13 structure with 112 atoms per unit cell1 (Fig. 1a). One might sus pect that very specific energetic interactions are needed to stabilize a structure as complex as this. But recent experiments2,3 show that t he AB13 structure is also formed in mixtures of spherical colloidal pa rticles with different diameters, which interact only via simple repul sive potentials. This raises the possibility that the formation of an AB13 superlattice might be supported by entropic effects alone. To inv estigate this possibility, we present here computer simulations of a b inary mixture of hard spheres. Our calculations show that entropy alon e is indeed sufficient to stabilize the AB13 phase, and that the full phase diagram of this system is surprisingly complex. Our results also suggest that vitrification or slow crystal nucleation in experimental studies of colloidal hard spheres can prevent the formation of equili brium phases.