Vacancy-stabilized crystalline order in hard cubes
arXiv:1111.3466 · doi:10.1073/pnas.1211784109
Abstract
We examine the effect of vacancies on the phase behavior and structure of systems consisting of hard cubes using event-driven molecular dynamics and Monte Carlo simulations. We find a first-order phase transition between a fluid and a simple cubic crystal phase that is stabilized by a surprisingly large number of vacancies, reaching a net vacancy concentration of ~6.4% near bulk coexistence. Remarkably, we find that vacancies increase the positional order in the system. Finally, we show that the vacancies are delocalized and therefore hard to detect.
Published online in PNAS early edition September 10, 2012
References in corpus (4)
- Crystalline Assemblies and Densest Packings of a Family of Truncated Tetrahedra and the Role of Directional Entropic Forces
- Self-assembly of the simple cubic lattice with an isotropic potential
- Freezing of parallel hard cubes with rounded edges
- Structural diversity and the role of particle shape and dense fluid behavior in assemblies of hard polyhedra
Cited by in corpus (35)
- Understanding shape entropy through local dense packing
- Entropically Patchy Particles: Engineering Valence through Shape Entropy
- Basic Understanding of Condensed Phases of Matter via Packing Models
- Scalable Metropolis Monte Carlo for simulation of hard shapes
- Unsupervised learning for local structure detection in colloidal systems
- Relevance of Packing to Colloidal Self-Assembly
- GPU Accelerated Discrete Element Method (DEM) Molecular Dynamics for Conservative, Faceted Particle Simulations
- Freezing of parallel hard cubes with rounded edges
- Multiple Phase Transitions in Extended Hard Core Lattice Gas Models in Two Dimensions
- Variable-cell method for stress-controlled jamming of athermal, frictionless grains
- Phase Behavior of a Family of Truncated Hard Cubes
- Revealing three-dimensional structure of individual colloidal crystal grain by coherent x-ray diffractive imaging
- Differently Shaped Hard Body Colloids in Confinement: From passive to active particles
- SAT-assembly: A new approach for designing self-assembling systems
- Shape Allophiles Improve Entropic Assembly
- Packing and Self-assembly of Truncated Triangular Bipyramids
- Phase Diagram of a Reentrant Gel of Patchy Particles
- Design Strategies for Self-Assembly of Discrete Targets
- The direct correlation function of a crystalline solid
- Free Minimization of the Fundamental Measure Theory Functional: Freezing of Parallel Hard Squares and Cubes
- Phase diagram of a system of hard cubes on the cubic lattice
- Heuristic rule for binary superlattice coassembly: Mixed plastic mesophases of hard polyhedral nanoparticles
- Manifestation of dipole-induced disorder in self-assembly of ferroelectric and ferromagnetic nanocubes
- [N]pT ensemble and finite-size scaling study of the GEM-4 critical isostructural transition
- Characterizing Different Motility Induced Regimes in Active Matter with Machine Learning and Noise
- Phase and vacancy behaviour of hard "slanted" cubes
- Phase behaviour and correlations of parallel hard squares: From highly confined to bulk systems
- How does a thermal binary crystal break under shear?
- Point Defects in Crystals of Charged Colloids
- Controlling Fragment Competition on Pathways to Addressable Self-Assembly
- Entropic crystallization of Brownian squares through pathways governed by orientational dynamics
- Phase behavior and crystal nucleation of hard triangular prisms
- Entropy-Driven Phase Transitions in Colloidal Systems
- Self-assembling clusters of particles on a shrinking liquid surface
- Structural Study of a Self-Assembled Gold Mesocrystal Grain by Coherent X-ray Diffraction Imaging