Floquet-engineered nonlinearities and controllable pair-hopping processes: From optical Kerr cavities to correlated quantum matter
arXiv:2304.05865 · doi:10.1103/PRXQuantum.4.040327
Abstract
This work explores the possibility of creating and controlling unconventional nonlinearities by periodic driving, in a broad class of systems described by the nonlinear Schrödinger equation (NLSE). By means of a parent quantum many-body description, we demonstrate that such driven systems are well captured by an effective NLSE with emergent nonlinearities, which can be finely controlled by tuning the driving sequence. We first consider a general class of two-mode nonlinear systems - relevant to optical Kerr cavities, waveguides and Bose-Einstein condensates - where we find an emergent four-wave mixing nonlinearity, which originates from pair-hopping processes in the parent quantum picture. Tuning this drive-induced nonlinearity is shown to modify the phase-space topology, which can be detected through relative population and phase measurements. We then couple individual (two-mode) dimers in view of designing extended lattice models with unconventional nonlinearities and controllable pair-hopping processes. Following this general dimerization construction, we obtain an effective lattice model with drive-induced interactions, whose ground-state exhibits orbital order, chiral currents and emergent magnetic fluxes through the spontaneous breaking of time-reversal symmetry. We analyze these intriguing properties both in the weakly-interacting (mean-field) regime, captured by the effective NLSE, and in the strongly-correlated quantum regime. Our general approach opens a route for the engineering of unconventional optical nonlinearities in photonic devices and controllable drive-induced interactions in ultracold quantum matter.
33 pages, 21 figures, including Appendices. Extended version of arXiv:2203.05554
References in corpus (41)
- Many-Body Physics with Ultracold Gases
- Quantum fluids of light
- Topological characterization of periodically-driven quantum systems
- Nonlinear atom interferometer surpasses classical precision limit
- Squeezing and entanglement in a Bose-Einstein condensate
- Periodically-driven quantum systems: Effective Hamiltonians and engineered gauge fields
- Time-resolved Observation and Control of Superexchange Interactions with Ultracold Atoms in Optical Lattices
- Dynamical control of matter-wave tunneling in periodic potentials
- Many-body localization in periodically driven systems
- Fisher Information and entanglement of non-Gaussian spin states
- Non-standard Hubbard models in optical lattices: a review
- Experimental demonstration of spontaneous chirality in a nonlinear microresonator
- Twisted magnetic patterns: Exploring the Dzyaloshinskii--Moriya vector
- Radio-frequency dressed state potentials for neutral atoms
- Tailoring quantum gases by Floquet engineering
- Experimental band structure spectroscopy along a synthetic dimension
- Periodically-driven quantum matter: the case of resonant modulations
- Spin squeezing: transforming one-axis-twisting into two-axis-twisting
- Giant modulation of optical nonlinearity by Floquet engineering
- Fully three dimensional breather solitons can be created using Feshbach resonance
- Ultracold Lattice Gases with Periodically Modulated Interactions
- Quantisation and its breakdown in a Hubbard-Thouless pump
- A Fermi-Hubbard Optical Tweezer Array
- Dynamic generation of spin-squeezed states in bosonic Josephson junctions
- Synthetic dimension band structures on a Si CMOS photonic platform
- Quantum geometric phase in Majorana's stellar representation: Mapping onto a many-body Aharonov-Bohm phase
- Mott transition in a two-leg Bose-Hubbard ladder under an artificial magnetic field
- One- and two-axis squeezing via laser coupling in an atomic Fermi-Hubbard model
- The role of real-space micromotion for bosonic and fermionic Floquet fractional Chern insulators
- Enhanced magnetic sensitivity with non-gaussian quantum fluctuations
- Coherently Coupled Mixtures of Bose-Einstein Condensed Gases
- Atom-Pair Tunneling and Quantum Phase Transition in Strong Interaction Regime
- Two-axis spin squeezing of two-component BEC via a continuous driving
- Dissipative Kerr solitons in a photonic dimer on both sides of exceptional point
- Formation of spontaneous density-wave patterns in DC driven lattices
- Floquet engineering a bosonic Josephson junction
- High-frequency expansions for time-periodic Lindblad generators
- Drive-induced nonlinearities of cavity modes coupled to a transmon ancilla
- Chiral orbital order of interacting bosons without higher bands
- Instabilities of interacting matter waves in optical lattices with Floquet driving
- Four-wave mixing Floquet topological soliton
Cited by in corpus (8)
- Recent progress on quantum simulations of non-standard Bose-Hubbard models
- Proposal for simulating quantum spin models with the Dzyaloshinskii-Moriya interaction using Rydberg atoms and the construction of asymptotic quantum many-body scar states
- Landau-Zener without a Qubit: Unveiling Multiphoton Interference, Synthetic Floquet Dimensions, and Dissipative Quantum Chaos
- Effective (Floquet) Lindblad generators from spectral unwinding
- Many-body phases from effective geometrical frustration and long-range interactions in a subwavelength lattice
- Nonlinear topological symmetry protection in a dissipative system
- Sachdev-Ye-Kitaev physics from the Hubbard model: A Floquet engineering approach
- Vortex bound states in dimerized -flux optical lattices: characterization, state preparation and current measurement