English

Quantum predator-prey cycles in dissipative Rydberg lattices

Quantum Physics 2025-10-31 v1

Abstract

The Lotka-Volterra model is a paradigm for self-organized predator-prey oscillations in far-from-equilibrium systems, yet testing it in real-world ecosystems is hindered by uncontrollable microscopic parameters. Here, we propose a quantum analogue of predator-prey dynamics using a tunable two-dimensional Rydberg atom array. Through mean-field analysis and numerical simulations based on the open-system discrete truncated Wigner approximation, we demonstrate that Rydberg excitations exhibit predator-prey cycles on microsecond timescales. We show that quantum coherence drives spontaneous symmetry breaking, while long-range interactions stabilize global oscillations against quantum-noise-induced desynchronization. We further reveal that quantum jump induce quasicycles whose amplitude scales inversely with the square root of the system size. Our work extends the study of predator-prey models to the quantum realm and advances quantum simulation stratagies that leverage engineered many-body nonequilibrium effects.

Keywords

Cite

@article{arxiv.2510.26295,
  title  = {Quantum predator-prey cycles in dissipative Rydberg lattices},
  author = {Ya-Xin Xiang and Zhengyang Bai and Yu-Qiang Ma},
  journal= {arXiv preprint arXiv:2510.26295},
  year   = {2025}
}
R2 v1 2026-07-01T07:13:29.836Z