Exploring Quantum Synchronization with a Composite Two-Qubit Oscillator
arXiv:2306.04205 · doi:10.1103/PhysRevA.109.033718
Abstract
Synchronization has recently been explored deep in the quantum regime with elementary few-level quantum oscillators such as qudits and weakly pumped quantum Van der Pol oscillators. To engineer more complex quantum synchronizing systems, it is practically relevant to study composite oscillators built up from basic quantum units that are commonly available and offer high controllability. Here, we consider a minimal model for a composite oscillator consisting of two interacting qubits coupled to separate baths, and show that this system exhibits a wide variety of synchronizing behaviors. We study the phase response of the constituent qubits as well as the system as a whole, when one of the qubits is weakly driven. We consider the thermal baths to have positive as well as effective negative temperatures, and discover effects that occur only when the temperatures of the baths for the two qubits are of opposite signs. We propose and analyze a circuit quantum electrodynamics implementation of this model, which exploits recent advances in dissipation engineering to realize effective negative temperature baths. Our work demonstrates the potential for assembling complex quantum synchronizing systems from basic building units, which is of pragmatic importance for advancing the field of quantum synchronization.
18 pages, 15 figures; includes appendices; improved presentation and some new results
References in corpus (10)
- Markovian master equations for quantum thermal machines: local vs global approach
- Mutual information as an order parameter for quantum synchronization
- Observing quantum synchronization blockade in circuit quantum electrodynamics
- Steady-state spin synchronization through the collective motion of trapped ions
- Quantum synchronization effects induced by strong nonlinearities
- Symmetries and Synchronization Blockade
- Cooperation and Competition in Synchronous Open Quantum Systems
- Half-integer vs. integer effects in quantum synchronization of spin systems
- Synchronization Lower Bounds the Efficiency of Near-Degenerate Thermal Machines
- Overcoming photon blockade in circuit QED single-atom maser with engineered metastability and strong coupling
Cited by in corpus (4)
- Quantum synchronization of qubits via dynamical Casimir effect
- Characterizing quantum synchronization in the van der Pol oscillator via tomogram and photon correlation
- Signatures of Environment-Induced Quantum Synchronization Transitions via Two-body Dissipator Engineering
- Excited states of coherent harmonic qubits with long-range photon coupling and dissipation