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Probing C84-embedded Si Substrate Using Scanning Probe Microscopy and Molecular Dynamics
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Path integral Monte Carlo study of quantum-hard sphere solids.

Luis M Sesé1

  • 1Departamento de Ciencias y Técnicas Fisicoquímicas, Facultad de Ciencias, Universidad Nacional de Educación a Distancia, Paseo Senda del Rey 9, 28040 Madrid, Spain. msese@ccia.uned.es

The Journal of Chemical Physics
|August 2, 2013
PubMed
Summary

Quantum hard-sphere solids were studied using path integral and Monte Carlo methods. Results show fcc and hcp lattices have similar stability, while bcc structures exhibit instability and transitions to hcp, impacting low-temperature equilibria.

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Area of Science:

  • Condensed matter physics
  • Quantum statistical mechanics

Background:

  • Understanding quantum effects in solid phases is crucial for low-temperature systems.
  • Previous work explored fluid-fcc equilibrium.

Purpose of the Study:

  • Investigate the behavior of face-centered cubic (fcc), hexagonal close-packed (hcp), and body-centered cubic (bcc) quantum hard-sphere solids.
  • Analyze fluid-solid equilibria and relative lattice stabilities.
  • Examine the influence of quantum mechanics on solid-solid phase transitions.

Main Methods:

  • Path integral simulations
  • Monte Carlo methods with Cao-Berne propagator
  • Einstein crystal technique for free energy calculations

Main Results:

  • Computed energies, pressures, and structural properties for fcc, hcp, and bcc solids.
  • Found comparable relative stabilities for fcc and hcp lattices.
  • Observed irregular lattice structures and transitions to hcp-like phases in bcc simulations.

Conclusions:

  • Quantum hard-sphere behavior significantly influences solid-solid equilibria at low temperatures.
  • The bcc lattice is less stable under these quantum conditions, potentially transitioning to hcp.
  • Results have implications for understanding phase transitions in quantum systems like helium.