Free energy and molecular dynamics calculations for the cubic-tetragonal phase transition in zirconia

Stefano Fabris, Anthony T. Paxton, and Michael W. Finnis
Phys. Rev. B 63, 094101 – Published 26 January 2001
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Abstract

The high-temperature cubic-tetragonal phase transition of pure stoichiometric zirconia is studied by molecular dynamics (MD) simulations and within the framework of the Landau theory of phase transformations. The interatomic forces are calculated using an empirical, self-consistent, orthogonal tight-binding model, which includes atomic polarizabilities up to the quadrupolar level. A first set of standard MD calculations shows that, on increasing temperature, one particular vibrational frequency softens. The temperature evolution of the free-energy surfaces around the phase transition is then studied with a second set of calculations. These combine the thermodynamic integration technique with constrained MD simulations. The results seem to support the thesis of a second-order phase transition but with unusual, very anharmonic behavior above the transition temperature.

  • Received 30 August 2000

DOI:https://doi.org/10.1103/PhysRevB.63.094101

©2001 American Physical Society

Authors & Affiliations

Stefano Fabris*, Anthony T. Paxton, and Michael W. Finnis

  • Atomistic Simulation Group, Department of Pure and Applied Physics, Queen’s University, Belfast BT7 1NN, United Kingdom

  • *Present address: Max-Planck-Institut Für Metallforschung, Seestrasse 92, D-70174, Stuttgart, Germany.

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Issue

Vol. 63, Iss. 9 — 1 March 2001

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