Auxiliary-state facilitated phase synchronization phenomena in isolated spin systems
arXiv:2510.27472 · doi:10.1103/kxtk-r6hn
Abstract
Extending classical synchronization to the quantum domain is of great interest both from the fundamental physics point of view and with a view toward quantum technology applications. This work characterizes phase synchronization of an effective spin-1 system, which is realized by coupling three quantum states with infinite lifetime to auxiliary excited states that have a finite lifetime. Integrating out the excited states, the effective spin-1 model features coherent and incoherent effective couplings. Our key findings are: (i) Phase synchronization can be controlled by adjusting the phases of the couplings to the excited states. (ii) Unlike in the paradigmatic spin-1 system studied in the literature, where the dissipative couplings describe decay into the limit cycle state, the effective spin-1 model investigated in this work is governed by a competition between dissipative decay into and out of the limit cycle state, with the dissipative decay out of the limit cycle state playing a critical role. (iii) We identify a parameter regime where phase synchronization of the effective spin-1 system is -- in the absence of coherent effective couplings -- governed entirely by the effective dissipators. The effective spin-1 model is benchmarked through comparisons with master equation calculations for the full Hilbert space. Physical insights are gained through analytical perturbation theory calculations. Our findings, which are expected to hold for a broad class of energy level and coupling schemes, are demonstrated using hyperfine states of Rb.
19 pages, 7 figures
References in corpus (32)
- Spinor Bose-Einstein condensates
- Stimulated Raman adiabatic passage in physics, chemistry and beyond
- Quantum synchronization of quantum van der Pol oscillators with trapped ions
- Effective operator formalism for open quantum systems
- Quantum synchronization of a driven self-sustained oscillator
- Engineered Dissipation for Quantum Information Science
- Quantum Synchronization of Two Ensembles of Atoms
- Quantum synchronization and entanglement generation
- Synchronizing the Smallest Possible System
- Algebraic Theory of Quantum Synchronization and Limit Cycles under Dissipation
- Perturbative approach to Markovian open quantum systems
- Observation of quantum phase synchronization in spin-1 atoms
- Quantum Stochastic Synchronization
- Synchronization and bistability of qubit coupled to a driven dissipative oscillator
- Quantum Synchronisation Enabled by Dynamical Symmetries and Dissipation
- Quantum Synchronization on the IBM Q System
- Critical Response of a Quantum van der Pol Oscillator
- Quantum limit-cycles and the Rayleigh and van der Pol oscillators
- Noise-induced quantum synchronization
- Optimal synchronization deep in the quantum regime: resource and fundamental limit
- Synchronization in two-level quantum systems
- Observing Quantum Synchronization of a Single Trapped-Ion Qubit
- Noise, not squeezing, boosts synchronization in the deep quantum regime
- Steady-state spin synchronization through the collective motion of trapped ions
- Quantum synchronization effects induced by strong nonlinearities
- Symmetries and Synchronization Blockade
- Macroscopic quantum synchronization effects
- Half-integer vs. integer effects in quantum synchronization of spin systems
- Measurement-Induced Quantum Synchronization and Multiplexing
- Topological quantum synchronization of fractionalized spins
- Quantum synchronization through the interference blockade
- Controlled dissipation for Rydberg atom experiments