GHZ-like states in the Qubit-Qudit Rabi Model
arXiv:2104.12341 · doi:10.21468/SciPostPhys.11.6.099
Abstract
We study a Rabi type Hamiltonian system in which a qubit and a d-level quantum system (qudit) are coupled through a common resonator. In the weak and strong coupling limits the spectrum is analysed through suitable perturbative schemes. The analysis show that the presence of the multilevels of the qudit effectively enhance the qubit-qudit interaction. The ground state of the strongly coupled system is a found of Greenberger-Horne-Zeilinger (GHZ) type. Therefore, despite the qubit-qudit strong coupling, the nature of the specific tripartite entanglement of the GHZ state suppress the bipartite entanglement. We analyze the system dynamics under quenching and adiabatic switching of the qubit-resonator and qudit-resonator couplings. In the quench case, we found that the non-adiabatic generations of photons in the resonator is enhanced by the number of levels in the qudit. The adiabatic control represents a possible route for preparation of GHZ states. Our analysis provides relevant information for future studies on coherent state transfer in qubit-qudit systems.
15 pages, 7 figures, Submission to SciPost
References in corpus (9)
- Coupling Superconducting Qubits via a Cavity Bus
- Beyond the Jaynes-Cummings model: circuit QED in the ultrastrong coupling regime
- Observation of the Bloch-Siegert Shift in a Qubit-Oscillator System in the Ultrastrong Coupling Regime
- Quantum information processing with circuit quantum electrodynamics
- Scalable quantum memory in the ultrastrong coupling regime
- Ultrastrong coupling dynamics with a transmon qubit
- Superconducting Qubit-Resonator-Atom Hybrid System
- Quasiparticle tunneling and 1/f charge noise in ultrastrongly coupled superconducting qubit and resonator
- Transmission spectra of the driven, dissipative Rabi model in the USC regime