Dissipative Kerr solitons, breathers and chimera states in coherently driven passive cavities with parabolic potential
arXiv:2208.12669 · doi:10.1364/OL.472900
Abstract
We analyze the stability and dynamics of dissipative Kerr solitons in the presence of a parabolic potential. This potential stabilizes oscillatory and chaotic regimes, favoring the generation of static DKSs. Furthermore, the potential induces the emergence of new dissipative structures, such as asymmetric breathers and chimera-like states. Based on a mode decomposition of these states, we unveil the underlying modal interactions.
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Cited by in corpus (3)
- Robust three-dimensional high-order solitons and breathers in driven dissipative systems: a Kerr cavity realization
- Controlled manipulation of solitons in a recirculating fiber loop using external potentials
- Impact of phase modulation on the dynamics of temporal localized structures in injected Kerr microcavities