Nonlinearity-induced Band Gap Transmission in Dispersive and Flat Band Photonic Lattices
arXiv:2506.12586 · doi:10.1364/OL.567606
Abstract
Nonlinear interactions in photonic non-dispersive (flat) bands remain largely unexplored, despite their potential to yield exotic phenomena. Here, we demonstrate nonlinearity-induced transport of light from a boundary waveguide into photonic lattices with dispersive and flat bands. For the one-dimensional lattice supporting a dispersive band, self-focusing Kerr nonlinearity effectively makes the boundary waveguide phase-matched with the lattice modes, enabling efficient energy transfer above a threshold input power. In contrast, such nonlinear transmission to the flat band modes is inhibited, as demonstrated in a rhombic lattice supporting an isolated flat band. Instead, as the nonlinearity increases, light couples periodically to the lattice edge mode and then gradually spreads into the lattice due to the excitation of the lower dispersive band.
References in corpus (7)
- Observation of a localized flat-band state in a photonic Lieb lattice
- Observation of bound states in Lieb photonic lattices
- Interaction-induced topological properties of two bosons in flat-band systems
- Calculated threshold of supratransmission phenomena in waveguide arrays with saturable nonlinearity
- Surge of power transmission in flat and nearly flat band lattices
- Nonlinear Switch and Spatial Lattice Solitons of Photonic s-p Orbitals
- Intensity Correlation Measurement to Simulate Two-body BICs and Probe Nonlinear Discrete Breathers