The ergodic and non-ergodic phases in one dimensional clean Jaynes-Cummings-Hubbard system
arXiv:2112.06468 · doi:10.1103/PhysRevB.105.165432
Abstract
We study the ergodic and non-ergodic behaviors of a clean Jaynes-Cummings-Hubbard chain for different parameters based on the average level spacings and the generalized fractal dimensions of eigenstates by using exact diagonalization. It can be found that a transition from ergodicity to non-ergodicity phases happens when the atom-photon detuning is large, and the non-ergodic phases maybe exist in the thermodynamic limit. We also find that the non-ergodic phase violates the eigenstate thermalization hypothesis. Finally, we study the many-body multifractality of the ground state and find that the derivative of the generalized fractal dimensions can determine the critical point of the Superfluid-Mott-insulation phase transition in a small range of parameters under different boundary conditions and there is no ergodicity for the ground state.
References in corpus (14)
- Thermalization and its mechanism for generic isolated quantum systems
- Many body localization and thermalization in quantum statistical mechanics
- Localization of interacting fermions at high temperature
- The distribution of the ratio of consecutive level spacings in random matrix ensembles
- Quantum phase transitions of light
- Photon blockade induced Mott transitions and XY spin models in coupled cavity arrays
- Quantum Many-Body Phenomena in Coupled Cavity Arrays
- Testing whether all eigenstates obey the Eigenstate Thermalization Hypothesis
- Mott-insulating and glassy phases of polaritons in 1D arrays of coupled cavities
- Many-body localization dynamics from gauge invariance
- Quantum Fluctuations, Temperature and Detuning Effects in Solid-Light Systems
- Quantum phase transitions in photonic cavities with two-level systems
- Population transfer in a Lambda system induced by detunings
- Site-wise manipulations and Mott insulator-superfluid transition of interacting photons using superconducting circuit simulators