Quantum phase transition in two dimension nonlinear cavity optomagnonic system
- URL: http://arxiv.org/abs/2509.17032v1
- Date: Sun, 21 Sep 2025 11:00:44 GMT
- Title: Quantum phase transition in two dimension nonlinear cavity optomagnonic system
- Authors: Yu Sang, Jie Liu, Lei Tan,
- Abstract summary: We investigate the superfluid-Mott insulator and ergodic-many body localization transitions based on a two dimension nonlinear cavity optomagnonic system.<n>The introduction of phonon-photon coupling enhances the coherence of the system when considering the Kerr nonlinearity of the YIG sphere.
- Score: 12.77128825796695
- License: http://arxiv.org/licenses/nonexclusive-distrib/1.0/
- Abstract: The superfluid-Mott insulator and ergodic-many body localization transitions based on a two dimension nonlinear cavity optomagnonic system are investigated, where a yttrium iron garnet (YIG) sphere is embedded at each site of a two-dimensional coupled cavity array. It can be demonstrated that, the introduction of phonon-photon coupling enhances the coherence of the system when considering the Kerr nonlinearity of the YIG sphere. In contrast, the Kerr nonlinearity of photons is more conducive to the Mott insulating phase than that of the YIG sphere. We further elucidate the underlying physical mechanism by calculating the effective repulsive potential of the system in the presence of photonic Kerr nonlinearity. Regarding the ergodic-many body localization transition, the results indicate that as the disorder strength of the Kerr nonlinearity increases, the system transitions from the ergodic phase to the many body localized phase, while increasing the chemical potential expands the region of the ergodic phase. This work provides a novel framework for characterizing quantum phase transitions in cavity optomagnonic systems and offers an experimentally feasible scheme for studying them, thereby yielding valuable insights for quantum simulation.
Related papers
- Quantum Nonlinear Response of Emitter Lattices [42.17343824099138]
We study the emergence of quantum nonlinearities in the optical response of lattices of two-level quantum emitters coherently driven by a laser.<n>For subwavelength lattice periods, where the system behaves as a quantum metasurface, we find that a resonant incident plane wave can populate excitonic Bloch states.<n>Closely related to resonance fluorescence, the far-field emission from the system in the strong-driving regime is dominated by a broadband background of photons.
arXiv Detail & Related papers (2025-10-22T19:43:54Z) - Fermat's Spiral-Based Characterization of Squeezed Nonlinear Motional States of Levitated Nanoparticle [33.72751145910978]
We introduce a nonlinear transformation of the phase-space coordinates using the concept of Fermat's spiral.<n>It removes the state distortion induced by the Duffing-type nonlinearity and enables characterization of the state of motion.<n>The presented scheme enables the separation of the effects of the applied state manipulation, the system's gradual thermalization, and the nonlinearity of the confinement.
arXiv Detail & Related papers (2025-09-18T11:17:35Z) - Topological Phase Transitions and Mixed State Order in a Hubbard Quantum Simulator [36.556659404501914]
Topological phase transitions challenge conventional paradigms in many-body physics.<n>We observe such a transition between one-dimensional crystalline symmetry-protected topological phases.<n>Our results demonstrate how topology and information influence quantum phase transitions.
arXiv Detail & Related papers (2025-05-22T17:58:35Z) - Mesoscopic cavity quantum electrodynamics with phase-disordered emitters in a Kerr nonlinear resonator [1.0890853201424715]
We demonstrate a few-emitter cavity QED system capable of realizing new Hamiltonians in quantum optics.<n>This work demonstrates the potential for solid state defect systems to realize emerging proposals and to study fundamental physics in quantum electrodynamics.
arXiv Detail & Related papers (2025-04-12T19:55:06Z) - Diversity of Superradiant Phase Transitions in the Bose-Fermi System under Tight-Binding Model in the Weak-Coupling Regime [5.581287929903093]
We present a one-dimensional tight-binding electronic chain intrinsically coupled to a single-mode optical cavity.<n>By employing the quantized electromagnetic vector potential through the Peierls substitution, the gauge-invariant coupled Bose-Fermi system facilitates momentum-dependent superradiant transitions.<n>The quantum phase transitions in this system are characterized by stable dynamics, including the displacement and squeezing of the cavity mode.
arXiv Detail & Related papers (2025-03-04T03:04:35Z) - In-situ-tunable spin-spin interactions in a Penning trap with in-bore
optomechanics [41.94295877935867]
We present an optomechanical system for in-situ tuning of the coherent spin-motion and spin-spin interaction strength.
We characterize the system using measurements of the induced mean-field spin precession.
These experiments show approximately a $times2$ variation in the ratio of the coherent to incoherent interaction strength.
arXiv Detail & Related papers (2024-01-31T11:00:39Z) - Dissipative stabilization of maximal entanglement between non-identical
emitters via two-photon excitation [49.1574468325115]
Two non-identical quantum emitters, when placed within a cavity and coherently excited at the two-photon resonance, can reach stationary states of nearly maximal entanglement.
We show that this mechanism is merely one among a complex family of phenomena that can generate both stationary and metastable entanglement when driving the emitters at the two-photon resonance.
arXiv Detail & Related papers (2023-06-09T16:49:55Z) - Floquet-engineered nonlinearities and controllable pair-hopping
processes: From optical Kerr cavities to correlated quantum matter [0.0]
This work explores the possibility of creating and controlling unconventional nonlinearities by periodic driving.
By means of a parent quantum many-body description, we demonstrate that such driven systems are well captured by an effective NLSE.
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.
arXiv Detail & Related papers (2023-04-12T13:56:27Z) - Probing the symmetry breaking of a light--matter system by an ancillary
qubit [50.591267188664666]
Hybrid quantum systems in the ultrastrong, and even more in the deep-strong, coupling regimes can exhibit exotic physical phenomena.
We experimentally observe the parity symmetry breaking of an ancillary Xmon artificial atom induced by the field of a lumped-element superconducting resonator.
This result opens a way to experimentally explore the novel quantum-vacuum effects emerging in the deep-strong coupling regime.
arXiv Detail & Related papers (2022-09-13T06:14:08Z) - Indication of critical scaling in time during the relaxation of an open
quantum system [34.82692226532414]
Phase transitions correspond to the singular behavior of physical systems in response to continuous control parameters like temperature or external fields.
Near continuous phase transitions, associated with the divergence of a correlation length, universal power-law scaling behavior with critical exponents independent of microscopic system details is found.
arXiv Detail & Related papers (2022-08-10T05:59:14Z) - Superfluid-Mott insulator quantum phase transition in a cavity
optomagnonic system [1.9537030509970355]
The superfluid-Mott insulator quantum phase transition in a two-dimensional cavity optomagnonic array system has been studied.
The numerical results show that the increasing coupling strength and the positive detuning perturbations of the photon and the magnon favor the coherence.
arXiv Detail & Related papers (2022-01-20T09:40:31Z) - Control of nonlinear optical phenomena and spatially structured optical
effects in a four-level quantum system near a plasmonic nanostructure [0.0]
We investigate the nonlinear optical response of a four-level double-V-type quantum system interacting with a pair of weak probe fields.
We also study the light-matter interaction in the case where one probe field carries an optical vortex, and another probe field has no vortex.
arXiv Detail & Related papers (2020-04-24T17:57:39Z)
This list is automatically generated from the titles and abstracts of the papers in this site.
This site does not guarantee the quality of this site (including all information) and is not responsible for any consequences.