4.5 Article

Phase diagram, mechanical and thermodynamics properties of metallic Co under high temperature and high pressure

期刊

COMPUTATIONAL MATERIALS SCIENCE
卷 104, 期 -, 页码 130-137

出版社

ELSEVIER
DOI: 10.1016/j.commatsci.2015.03.046

关键词

Metals; Phase diagram; Elastic properties; Thermodynamics properties; High temperature and high pressure

资金

  1. National Natural Science Foundation of China [11464005]
  2. Science-Technology Foundation of Guizhou Province [[2013] 2240]
  3. Natural Science Research Projects [QJTD[2014]38, QJTD[2013]16]

向作者/读者索取更多资源

The phase diagram, mechanical and thermodynamic properties of metallic Co are investigated extensively using first-principles calculations in conjunction with a quasi-harmonic Debye model. The simulations indicate that metallic Co is a ferromagnetic hcp (epsilon) structure at 0 K and 0 GPa, and transforms to a nonmagnetic fcc (beta) structure at about 120 GPa under compression, the transition is consistent with the experimental results (crystallographic transition) and other theoretical calculations. Particularly, from the calculated Gibbs free energy, the phase boundary between the ferromagnetic hcp (epsilon) phase and the ferromagnetic fcc (gamma(f)) phase is drawn, it is close to the conjecture of Yoo et al. (2000) (the phase boundary between the ferromagnetic hcp phase (epsilon) and the mixed phases (epsilon + beta/gamma) of the ferromagnetic hcp (epsilon) structure and the ferromagnetic or paramagnetic fcc (gamma), or nonmagnetic fcc (beta) structure) as well as the part of experimental data under high temperature and high pressure. The elastic constants of the ferromagnetic hcp- and fcc-Co under temperature are presented for the fist time in theory, they are in reasonable agreement with experiments at zero temperature and zero pressure, and decrease slightly with increasing temperature at V/V-0 = 1 or V/V-0 = 0.97. In addition, the heat capacity C-V, thermal expansion coefficient alpha and Gruneisen parameter gamma for the ferromagnetic hcp- and fcc-Co are also acquired and predicted successfully in an extended temperature and pressure range. (C) 2015 Elsevier B.V. All rights reserved.

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