Self-organized defect strings in two-dimensional crystals
arXiv:1307.3979 · doi:10.1103/PhysRevE.88.060402
Abstract
Using experiments with single particle resolution and computer simulations we study the collective behaviour of multiple vacancies injected into two-dimensional crystals. We find that the defects assemble into linear strings that propagate through the crystal in a succession of rapid one-dimensional gliding phases and rare rotations, during which the direction of motion changes. At both ends, strings are terminated by dislocations with anti-parallel Burgers vectors. By monitoring the separation of the dislocations, we measure their effective interactions with high precision, for the first time beyond spontaneous formation and annihilation, and explain the double-well form of the dislocation interaction in terms of continuum elasticity theory. Our results give a detailed picture of the motion and interaction of dislocations in two dimensions and enhance our understanding of topological defects in two-dimensional nano-materials.
References in corpus (2)
Cited by in corpus (10)
- Fabricating large two-dimensional single colloidal crystals by doping with active particles
- The melting of the classical two dimensional Wigner crystal
- The Role of Quantum Fluctuations in the Hexatic Phase of Cold Polar Molecules
- Tuneable defect interactions and supersolidity in dipolar quantum gases on a lattice potential
- Characterizing Different Motility Induced Regimes in Active Matter with Machine Learning and Noise
- Incommensurability effects on dipolar bosons in optical lattices
- Entropy and Kinetics of Point-Defects in Two-Dimensional Dipolar Crystals
- Continuum theory of electrostatic-elastic coupling interactions in colloidal crystals
- Controlled creation of point defects in 3D colloidal crystals
- Electrostatic-Elastic Softening and Ultraviolet Instability Driven by Non-DLVO Interactions in Charged Colloidal Crystals