Half-integer vs. integer effects in quantum synchronization of spin systems
arXiv:2208.12766 · doi:10.22331/q-2022-12-29-885
Abstract
We study the quantum synchronization of a single spin driven by an external semiclassical signal for spin numbers larger than , the smallest system to host a quantum self-sustained oscillator. The occurrence of interference-based quantum synchronization blockade is found to be qualitatively different for integer vs. half-integer spin number . We explain this phenomenon as the interplay between the external signal and the structure of the limit cycle in the generation of coherence in the system. Moreover, we show that the same dissipative limit-cycle stabilization mechanism leads to very different levels of quantum synchronization for integer vs. half-integer . However, by choosing an appropriate limit cycle for each spin number, comparable levels of quantum synchronization can be achieved for both integer and half-integer spin systems.
14 pages, 6 Figures
References in corpus (8)
- Entanglement in a first order quantum phase transition
- Mutual information as an order parameter for quantum synchronization
- Spin Correlations as a Probe of Quantum Synchronization in Trapped Ion Phonon-Lasers
- Experimental Realization of a Quantum Integer-Spin Chain with Controllable Interactions
- Quantum Stochastic Synchronization
- Synchronization and bistability of qubit coupled to a driven dissipative oscillator
- Quantum synchronization
- Synchronization of micromasers
Cited by in corpus (8)
- Topological synchronization of quantum van der Pol oscillators
- Symmetries and Synchronization Blockade
- Topological quantum synchronization of fractionalized spins
- Quantum synchronization through the interference blockade
- Exploring Quantum Synchronization with a Composite Two-Qubit Oscillator
- Quantum spin van der Pol oscillator -- a spin-based limit-cycle oscillator exhibiting quantum synchronization
- Quantum limit cycles and synchronization from a measurement perspective
- Auxiliary-state facilitated phase synchronization phenomena in isolated spin systems