Optomechanical lasing and domain walls driven by exciton-phonon interactions
arXiv:2107.12019 · doi:10.1134/S1063776122010058
Abstract
We study theoretically interaction of optically-pumped excitons with acoustic waves in planar semiconductor nanostructures in the strongly nonlinear regime. We start with the multimode optomechanical lasing regime for optical pump frequency {above} the exciton resonance and demonstrate broadband chaotic-like lasing spectra. We also predict formation of propagating optomechanical domain walls driven by optomechanical nonlinearity for the optical pump {below} the exciton resonance. Stability conditions for the domain walls are examined analytically and are in agreement with direct numerical simulations. Our results apply to nonlinear sound propagation in the arrays of quantum wells or in the plane of Bragg semiconductor microcavities hosting excitonic polaritons.
8 pages, 12 figures
References in corpus (8)
- Polariton resonances for ultra-strong coupling cavity optomechanics in GaAs/AlAs multiple quantum wells
- Cavity Optomechanics with Polariton Bose-Einstein Condensates
- Phonoritons in a monolayer hBN optical cavity
- Phonoritonic crystals with synthetic magnetic field for acoustic diode
- Multiple quantum wells for PT-symmetric phononic crystals
- Interactive optomechanical coupling with nonlinear polaritonic systems
- Optomechanical amplification driven by interference of phonon-exciton and phonon-photon couplings
- Resonant excitation of acoustic waves in one-dimensional exciton-polariton systems