Solid-solid phase transition in hard ellipsoids
arXiv:0908.1043 · doi:10.1063/1.3251054
Abstract
We present a computer simulation study of the crystalline phases of hard ellipsoids of revolution. A previous study [Phys. Rev. E, \textbf{75}, 020402 (2007)] showed that for aspect ratios the previously suggested stretched-fcc phase [Mol. Phys., \textbf{55}, 1171 (1985)] is unstable with respect to a simple monoclinic phase with two ellipsoids of different orientations per unit cell (SM2). In order to study the stability of these crystalline phases at different aspect ratios and as a function of density we have calculated their free energies by thermodynamic integration. The integration path was sampled by an expanded ensemble method in which the weights were adjusted by the Wang-Landau algorithm. We show that for aspect ratios the SM2 structure is more stable than the stretched-fcc structure for all densities above solid-nematic coexistence. Between and our calculations reveal a solid-solid phase transition.
References in corpus (6)
- Determining the density of states for classical statistical models: A random walk algorithm to produce a flat histogram
- Superdense Crystal Packings of Ellipsoids
- Determination of phase diagrams via computer simulation: Methodology and applications to water, electrolytes and proteins
- Dynamics of uniaxial hard ellipsoids
- Novel crystal phase in suspensions of hard ellipsoids
- Glassy dynamics in monodisperse hard ellipsoids
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