Coupling phase enabled level transitions in pseudo-Hermitian magnon-polariton systems
- URL: http://arxiv.org/abs/2508.04298v1
- Date: Wed, 06 Aug 2025 10:34:35 GMT
- Title: Coupling phase enabled level transitions in pseudo-Hermitian magnon-polariton systems
- Authors: Huang Xin, Liu Jingyu, Lin Shirong,
- Abstract summary: We propose a pseudo-Hermitian model with two magnon and two cavity modes coupled via phase-dependent interaction.<n>We link the energy spectrum to phase transitions, observing exceptional points when pseudo-Hermitian symmetry breaks.
- Score: 0.0
- License: http://arxiv.org/licenses/nonexclusive-distrib/1.0/
- Abstract: While cavity-magnon hybridization offers intriguing physics, its practical implementation is hindered by intrinsic damping in both cavity and magnon modes, leading to short coherence times and constrained applications. Recently, with the emergence of tunable external gain at the macroscopic scale, the research focus has shifted from purely lossy systems to gain-loss balanced non-Hermitian systems. Here, we propose a pseudo-Hermitian model with two magnon and two cavity modes coupled via phase-dependent interaction. We link the energy spectrum to phase transitions, observing exceptional points when pseudo-Hermitian symmetry breaks. We also observed level attraction and level repulsion. The former corresponds to four phase transitions and manifests as a double Z-shaped energy spectrum, the latter corresponds to two phase transitions, with the repulsive gap depending on the coupling phase. In the phase diagram defined by non-Hermiticity and coupling phase, we reveal a distinctive correspondence: pseudo-Hermitian symmetry breaking is intrinsically linked to coupling mode transitions, enabling new strategies for controlling hybrid quantum states in spintronic systems.
Related papers
- 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) - Synchronization of Quasi-Particle Excitations in a Quantum Gas with Cavity-Mediated Interactions [34.82692226532414]
Driven-dissipative quantum systems can undergo transitions from stationary to dynamical phases.<n>We develop a cavity-assisted Bragg spectroscopy technique to resolve its collective modes.<n>This reveals how dissipation microscopically drives collective dynamics and signals a precursor to a dynamical phase transition.
arXiv Detail & Related papers (2025-04-24T16:44:07Z) - Theory of the correlated quantum Zeno effect in a monitored qubit dimer [41.94295877935867]
We show how the competition between two measurement processes give rise to two distinct Quantum Zeno (QZ) regimes.<n>We develop a theory based on a Gutzwiller ansatz for the wavefunction that is able to capture the structure of the Hilbert phase diagram.<n>We show how the two QZ regimes are intimately connected to the topology of the flow of the underlying non-Hermitian Hamiltonian governing the no-click evolution.
arXiv Detail & Related papers (2025-03-28T19:44:48Z) - Mixed-state phase transitions in spin-Holstein models [5.900087161838199]
This work aims to extend the notion of mixed-state phases to the realm of coupled electron/spinphonon systems.<n>We consider a two-dimensional cluster Hamiltonian locally coupled to a set of single bosonic modes with arbitrary coupling strength.<n>We argue that both measures detect signatures of mixed-state phase transitions, albeit at different critical spin-phonon coupling strengths.
arXiv Detail & Related papers (2024-12-03T18:10:10Z) - Geometric Phase of a Transmon in a Dissipative Quantum Circuit [44.99833362998488]
We study the geometric phases acquired by a paradigmatic setup: a transmon coupled to a superconductor resonating cavity.
In the dissipative model, the non-unitary effects arise from dephasing, relaxation, and decay of the transmon coupled to its environment.
Our approach enables a comparison of the geometric phases obtained in these models, leading to a thorough understanding of the corrections introduced by the presence of the environment.
arXiv Detail & Related papers (2024-01-22T16:41:00Z) - Signatures of Dissipation Driven Quantum Phase Transition in Rabi Model [0.0]
We investigate the equilibrium properties and relaxation features of the dissipative quantum Rabi model.
We show that, in the Ohmic regime, a Beretzinski-Kosterlitz-Thouless quantum phase transition occurs by varying the coupling strength.
arXiv Detail & Related papers (2022-05-23T18:13:10Z) - Non-Gaussian superradiant transition via three-body ultrastrong coupling [62.997667081978825]
We introduce a class of quantum optical Hamiltonian characterized by three-body couplings.
We propose a circuit-QED scheme based on state-of-the-art technology that implements the considered model.
arXiv Detail & Related papers (2022-04-07T15:39:21Z) - Topological transitions with continuously monitored free fermions [68.8204255655161]
We show the presence of a topological phase transition that is of a different universality class than that observed in stroboscopic projective circuits.
We find that this entanglement transition is well identified by a combination of the bipartite entanglement entropy and the topological entanglement entropy.
arXiv Detail & Related papers (2021-12-17T22:01:54Z) - Geometric phase in a dissipative Jaynes-Cummings model: theoretical
explanation for resonance robustness [68.8204255655161]
We compute the geometric phases acquired in both unitary and dissipative Jaynes-Cummings models.
In the dissipative model, the non-unitary effects arise from the outflow of photons through the cavity walls.
We show the geometric phase is robust, exhibiting a vanishing correction under a non-unitary evolution.
arXiv Detail & Related papers (2021-10-27T15:27:54Z) - Peratic Phase Transition by Bulk-to-Surface Response [26.49714398456829]
We show a duality between many-body dynamics and static Hamiltonian ground states for both classical and quantum systems.
Our prediction of peratic phase transition has direct consequences in quantum simulation platforms such as Rydberg atoms and superconducting qubits.
arXiv Detail & Related papers (2021-09-27T18:00:01Z) - Superradiant Switching, Quantum Hysteresis, and Oscillations in a
Generalized Dicke Model [0.0]
A first-order phase transition to coexisting normal and superradiant phases is observed, corresponding with the emergence of switching dynamics.
We show that this phase coexistence gives rise to a loop also for the quantum mechanical system.
arXiv Detail & Related papers (2020-07-27T02:11:53Z) - Dynamical response and competing orders in two-band Hubbard model [0.0]
We study two-particle dynamical response functions in two-band Hubbard model.
We observe the transition between theexcitonic condensate and spin-state ordered state is continuous with a narrow strip of supersolidphase separating the two.
arXiv Detail & Related papers (2020-06-16T10:30:42Z)
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.