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Main Authors: Li, Zhaoyi, Glorioso, Paolo, Rodriguez-Nieva, Joaquin F.
Format: Preprint
Published: 2022
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Online Access:https://arxiv.org/abs/2211.08392
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author Li, Zhaoyi
Glorioso, Paolo
Rodriguez-Nieva, Joaquin F.
author_facet Li, Zhaoyi
Glorioso, Paolo
Rodriguez-Nieva, Joaquin F.
contents We study the far-from-equilibrium dynamics of isolated two-dimensional Heisenberg antiferromagnets. We consider spin spiral initial conditions which imprint a position-dependent staggered-magnetization (or Neel order) in the two-dimensional lattice. Remarkably, we find a long-lived prethermal regime characterized by self-similar behavior of staggered magnetization fluctuations, although the system has no long-range order at finite energy and the staggered magnetization does not couple with conserved charges. Exploiting the separation of length scales introduced by the initial condition, we derive a simplified analytical model that allow us to compute the spatial-temporal scaling exponents and power-law distribution of the staggered magnetization fluctuations analytically, and find excellent agreement with numerical simulations using phase space methods. The scaling exponents are insensitive to details of the initial condition, in particular, no fine-tuning of energy is required to trigger the self-similar scaling regime. Compared with recent results on far-from-equilibrium universality on the Heisenberg ferromagnet, we find quantitatively distinct spatial-temporal scaling exponents, therefore suggesting that the same model with ferromagnetic and antiferromagnetic initial conditions can host different universal regimes. Our predictions are relevant to ultra-cold atoms simulators of Heisenberg magnets and driven antiferromagnetic insulators.
format Preprint
id arxiv_https___arxiv_org_abs_2211_08392
institution arXiv
publishDate 2022
record_format arxiv
spellingShingle Far-from-equilibrium universality in two-dimensional Heisenberg antiferromagnets
Li, Zhaoyi
Glorioso, Paolo
Rodriguez-Nieva, Joaquin F.
Statistical Mechanics
Quantum Gases
We study the far-from-equilibrium dynamics of isolated two-dimensional Heisenberg antiferromagnets. We consider spin spiral initial conditions which imprint a position-dependent staggered-magnetization (or Neel order) in the two-dimensional lattice. Remarkably, we find a long-lived prethermal regime characterized by self-similar behavior of staggered magnetization fluctuations, although the system has no long-range order at finite energy and the staggered magnetization does not couple with conserved charges. Exploiting the separation of length scales introduced by the initial condition, we derive a simplified analytical model that allow us to compute the spatial-temporal scaling exponents and power-law distribution of the staggered magnetization fluctuations analytically, and find excellent agreement with numerical simulations using phase space methods. The scaling exponents are insensitive to details of the initial condition, in particular, no fine-tuning of energy is required to trigger the self-similar scaling regime. Compared with recent results on far-from-equilibrium universality on the Heisenberg ferromagnet, we find quantitatively distinct spatial-temporal scaling exponents, therefore suggesting that the same model with ferromagnetic and antiferromagnetic initial conditions can host different universal regimes. Our predictions are relevant to ultra-cold atoms simulators of Heisenberg magnets and driven antiferromagnetic insulators.
title Far-from-equilibrium universality in two-dimensional Heisenberg antiferromagnets
topic Statistical Mechanics
Quantum Gases
url https://arxiv.org/abs/2211.08392