English

Quantum Slow Relaxation and Metastability due to Dynamical Constraints

Quantum Physics 2018-07-31 v2 Statistical Mechanics

Abstract

One of the general mechanisms that give rise to the slow cooperative relaxation characteristic of classical glasses is the presence of kinetic constraints in the dynamics. Here we show that dynamical constraints can similarly lead to slow thermalization and metastability in translationally invariant quantum many-body systems. We illustrate this general idea by considering two simple models: (i) a one-dimensional quantum analogue to classical constrained lattice gases where excitation hopping is constrained by the state of neighboring sites, mimicking excluded-volume interactions of dense fluids; and (ii) fully packed quantum dimers on the square lattice. Both models have a Rokhsar--Kivelson (RK) point at which kinetic and potential energy constants are equal. To one side of the RK point, where kinetic energy dominates, thermalization is fast. To the other, where potential energy dominates, thermalization is slow, memory of initial conditions persists for long times, and separation of timescales leads to pronounced metastability before eventual thermalization. Furthermore, in analogy with what occurs in the relaxation of classical glasses, the slow-thermalization regime displays dynamical heterogeneity as manifested by spatially segregated growth of entanglement.

Keywords

Cite

@article{arxiv.1706.02603,
  title  = {Quantum Slow Relaxation and Metastability due to Dynamical Constraints},
  author = {Zhihao Lan and Merlijn van Horssen and Stephen Powell and Juan P. Garrahan},
  journal= {arXiv preprint arXiv:1706.02603},
  year   = {2018}
}

Comments

6 pages, 5 figures, published version

R2 v1 2026-06-22T20:13:01.195Z