Dynamic response and roughening of ferroelectric domain walls driven at planar electrode edges
arXiv:2111.11136 · doi:10.1063/5.0069920
Abstract
Understanding and controlling the motion, stability, and equilibrium configuration of ferroelectric domain walls is key for their integration into potential nanoelectronics applications, such as ferroelectric racetrack memories. Using piezoresponse force microscopy we analyse the growth and roughness of ferroelectric domains in epitaxial thin film Pb(ZrTi)O, driven by the electric fields at straight edges of planar electrodes at two different temperatures. This device relevant geometry allows us to confirm that the domain walls are well described as 1-dimensional monoaffine elastic interfaces driven in random-bond disorder. However, we observe a progressive increase of roughness as initially flat domain walls move through the disorder landscape, which could prove a significant limiting factor for racetrack-type memories using ferroelectrics.
To appear in Applied Physics Letters (accepted)
References in corpus (11)
- Conduction at domain walls in insulating Pb(ZrTi)O thin films
- Nonlinear Dynamics of Domain Wall Propagation in Epitaxial Ferroelectric Thin Films
- Gaussian Statistics of Fracture Surfaces
- Bursts of activity in collective cell migration
- Non-equilibrium relaxation of an elastic string in a random potential
- Subcritical switching dynamics and humidity effects in nanoscale studies of domain growth in ferroelectric thin films
- Multiscaling analysis of ferroelectric domain wall roughness
- Minimum domain size and stability in carbon nanotube-ferroelectric devices
- From bulk descriptions to emergent interfaces: connecting the Ginzburg-Landau and elastic line models
- A numerical study of the statistics of roughness parameters for fluctuating interfaces
- Degradation of domains with sequential field application