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Stability and metallization of solid oxygen at high pressure.

Sabri F Elatresh1, Stanimir A Bonev

  • 1Department of Physics, University of Guelph, Guelph, Ontario N1G 2W1, Canada.

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A new metallic phase of oxygen (η' phase) is thermodynamically stable at high pressures and temperatures. This finding, crucial for understanding solid oxygen, incorporates anharmonic lattice dynamics and thermal disorder effects.

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Area of Science:

  • Condensed matter physics
  • Materials science
  • Computational chemistry

Background:

  • The phase diagram of solid oxygen under extreme conditions is not fully understood.
  • Previous studies have not fully accounted for anharmonic effects and thermal disorder.

Purpose of the Study:

  • To investigate the phase diagram of oxygen at high pressures (50-130 GPa) and temperatures (up to 1200 K).
  • To identify stable phases and their properties using first-principles theory.
  • To elucidate the role of anharmonic lattice dynamics and thermal disorder.

Main Methods:

  • First-principles calculations employing hybrid exchange functionals.
  • Inclusion of anharmonic lattice dynamics effects.
  • Analysis of electronic, structural, and thermodynamic properties at 0 K and finite temperatures.

Main Results:

  • A metallic molecular structure with P63/mmc symmetry (η' phase) is found to be thermodynamically stable above 50 GPa at elevated temperatures.
  • The stability of the η' phase is dependent on incorporating anharmonic effects and thermal disorder.
  • Calculations provide detailed electronic, structural, and thermodynamic properties for solid oxygen.

Conclusions:

  • The η' phase represents a significant new phase in the solid oxygen phase diagram.
  • Accurate theoretical predictions require accounting for complex physical phenomena like anharmonicity and thermal disorder.
  • The study offers valuable insights for experimental verification and further theoretical investigations.