Abstract
We show that front motion can be induced by noise in a spatially extended excitable system with a global constraint. Our model system is a semiconductor superlattice exhibiting complex dynamics of electron accumulation and depletion fronts. The presence of noise induces a global change in the dynamics of the system forcing stationary fronts to move through the entire device. We demonstrate the effect of coherence resonance in our model; i.e., there is an optimal level of noise at which the regularity of front motion is enhanced. Physical insight is provided by relating the space-time dynamics of the fronts with a phase-space analysis.
| Original language | English |
|---|---|
| Article number | 244104 |
| Journal | Physical Review Letters |
| Volume | 96 |
| Issue number | 24 |
| DOIs | |
| Publication status | Published - 2006 |
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