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Observation of Non-Gaussian Magnon Dynamics in a Two-Dimensional Long-Range XY Model

S. -A. Guo, J. -Y. Tan, J. Ye, Y. Jiang, L. Zhang, Y. -X. Chen, H. -J. Chen, H. -Y. Hu, W. -X. Guo, B. -X. Qi, L. He, Z. -C. Zhou, Y. -K. Wu, L. -M. Duan·June 11, 2026
Quantum Physics

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Abstract

Non-Gaussian evolution of high-order spin correlations characterizes important properties of quantum many-body systems. In practice, decoherence, statistical fluctuation and miscalibration of experimental parameters all hinder the witness of non-Gaussian dynamics. Here we demonstrate the crossover between Gaussian and non-Gaussian dynamics on a two-dimensional XY model with long-range and spatially structured interaction using a trapped ion quantum simulator. We prepare different initial densities of magnon excitations and verify the dynamics of single-spin observables for the engineered Hamiltonian. Then we compare the high-order spin correlations with the mean-field solution and the Holstein-Primakoff approximation, and demonstrate the non-Gaussian behavior in a way independent of the calibration errors. Our work provides a verifiable path from classically simulatable dynamics to regimes where quantum advantage may emerge.

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