Growing smooth interfaces with inhomogeneous, moving external fields: dynamical transitions, devil's staircases and self-assembled ripples
arXiv:cond-mat/0207412 · doi:10.1103/PhysRevLett.89.176101
Abstract
We study the steady state structure and dynamics of an interface in a pure Ising system on a square lattice placed in an inhomogeneous external field. The field has a profile with a fixed shape designed to stabilize a flat interface, and is translated with velocity v_e. For small v_e, the interface is stuck to the profile, is macroscopically smooth, and is rippled with a periodicity in general incommensurate with the lattice parameter. For arbitrary orientations of the profile, the local slope of the interface locks in to one of infinitely many rational values (devil's staircase) which most closely approximates the profile. These ``lock-in'' structures and ripples dissappear as v_e increases. For still larger v_e the profile detaches from the interface which is now characterized by standard Kardar-Parisi-Zhang (KPZ) exponents.
4 pages, 4 figures, published version, minor changes
References in corpus (4)
- Stress relaxation in a perfect nanocrystal by coherent ejection of lattice layers
- Novel fluctuations at constrained interfaces
- Growing smooth interfaces with inhomogeneous, moving external fields: dynamical transitions, devil's staircases and self-assembled ripples
- A Kinetics Driven Commensurate - Incommensurate Transition
Cited by in corpus (5)
- Novel fluctuations at constrained interfaces
- Growing smooth interfaces with inhomogeneous, moving external fields: dynamical transitions, devil's staircases and self-assembled ripples
- A Kinetics Driven Commensurate - Incommensurate Transition
- Novel Fluctuations at a Constrained Liquid-Solid Interface
- Dynamical Transitions of a Driven Ising Interface