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Quantum Computing Universal Thermalization Dynamics in a (2+1)D Lattice Gauge Theory

Quantum Physics 2025-09-19 v2 High Energy Physics - Lattice High Energy Physics - Phenomenology Nuclear Theory

Abstract

Simulating non-equilibrium phenomena in strongly-interacting quantum many-body systems, including thermalization, is a promising application of near-term and future quantum computation. By performing experiments on a digital quantum computer consisting of fully-connected optically-controlled trapped ions, we study the role of entanglement in the thermalization dynamics of a Z2Z_2 lattice gauge theory in 2+1 spacetime dimensions. Using randomized-measurement protocols, we efficiently learn a classical approximation of non-equilibrium states that yields the gap-ratio distribution and the spectral form factor of the entanglement Hamiltonian. These observables exhibit universal early-time signals for quantum chaos, a prerequisite for thermalization. Our work, therefore, establishes quantum computers as robust tools for studying universal features of thermalization in complex many-body systems, including in gauge theories.

Keywords

Cite

@article{arxiv.2408.00069,
  title  = {Quantum Computing Universal Thermalization Dynamics in a (2+1)D Lattice Gauge Theory},
  author = {Niklas Mueller and Tianyi Wang and Or Katz and Zohreh Davoudi and Marko Cetina},
  journal= {arXiv preprint arXiv:2408.00069},
  year   = {2025}
}

Comments

published version, additional data points added to Fig. 4, minor changes, 23 pages, 20 figures

R2 v1 2026-06-28T17:59:44.211Z