February 2026

Journal

Auxiliary-state-facilitated phase synchronization phenomena in isolated spin systems

By:
Molenda, Xylo; Zhong, Shan; Viswanathan, Balakrishnan; Li, Xingli; Yan, Yangqian; Marino Valle, Alberto M; Blume, Doerte
Journal Name:
Physical Review A
Page Number:
23711
Volume:
113
Publication Date:
February 20, 2026
View DOI Listing:
https://doi.org/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. The following are our key findings. (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 examined using hyperfine states of 87Rb as an example system.


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