Abstract
The liquid Mg-Bi system exhibits strong compound formation at the 'octet' composition (Mg3Bi2) We present results of first-principles molecular dynamics simulations of this alloy system at different compositions: the pure Mg and Bi liquid components, the stoichiometric liquid, and a Mg-rich composition (Mg62Bi28). For the pure liquids, our results are in excellent agreement with experimental diffraction data. For Mg3Bi2, a significant modification of the characteristics of the local ordering is found w.r.t, the crystalline alpha-phase: the ordering in the liquid is much more ionic. This structural modification is consistent with the structure of the superionic beta-phase, that was reported recently by Barnes et al 1994 J. Phys.: Condens. Matter 6 L467. Our simulations cannot reproduce the 'reverse' metal-nonmetal transition observed upon melting, the computed conductivity being much larger than found in experiments. Instead, for the Mg-rich Mg62Bi28 alloy, the calculated conductivity approaches closely to the experimental value.
| Original language | English |
|---|---|
| Pages (from-to) | 1879-1896 |
| Number of pages | 18 |
| Journal | Journal of Physics-Condensed Matter |
| Volume | 8 |
| Issue number | 12 |
| Publication status | Published - 18-Mar-1996 |
Keywords
- DENSITY-FUNCTIONAL THEORY
- ELECTRONIC-PROPERTIES
- POLYVALENT ELEMENTS
- NEUTRON-DIFFRACTION
- MG-SB
- PSEUDOPOTENTIALS
- 1ST-PRINCIPLES
- ALLOYS
- PB