Crystalline structures of particles interacting through the harmonic-repulsive pair potential
1Technological Design Institute of Scientific Instrument Engineering, Novosibirsk 630058, Russia.
Molecular dynamics simulations reveal unexpected complex crystal structures forming from identical particles with a harmonic-repulsive pair potential. These novel structures challenge previous predictions for particle behavior at varying densities and temperatures.
Area of Science:
- Condensed Matter Physics
- Materials Science
- Computational Physics
Background:
- Understanding particle interactions and resulting structures is crucial in condensed matter physics.
- Previous studies on harmonic-repulsive potentials did not predict the complex crystallizations observed.
Purpose of the Study:
- To investigate the behavior of identical particles under a harmonic-repulsive pair potential using molecular dynamics simulations.
- To identify and characterize novel crystalline structures formed at different densities and temperatures.
Main Methods:
- Three-dimensional molecular dynamics simulations were employed.
- The system consisted of identical particles interacting via a harmonic-repulsive pair potential.
- Simulations were conducted at various densities and decreasing temperatures.
Main Results:
- Crystallization into previously unobserved structures, including Ia3¯d (space group #230) and monoclinic C2/c (space group #15), was observed.
- The C2/c structure exhibited particles with different energies at distinct Wyckoff sites, resembling columnar quasicrystals.
- At certain densities, stable liquids resistant to crystallization, or no crystallization at all, were noted.
- Distorted beta-tin (βSn) diamond structures and a possible R3¯c hexagonal lattice were also observed.
Conclusions:
- The harmonic-repulsive pair potential can lead to the formation of complex and unanticipated crystal structures.
- The observed structures, such as Ia3¯d and C2/c, represent new findings in single-component systems.
- Particle behavior is highly sensitive to density, leading to diverse outcomes including stable liquids and novel crystalline phases.
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