Strong-to-Weak Symmetry Breaking in Open Quantum Systems: From Discrete Particles to Continuum Hydrodynamics
Jacob Hauser, Kaixiang Su, Hyunsoo Ha, Jerome Lloyd, Thomas G. Kiely, Romain Vasseur, Sarang Gopalakrishnan, Cenke Xu, Matthew P. A. Fisher

TL;DR
This paper investigates spontaneous strong-to-weak symmetry breaking in open quantum systems, revealing dimension-dependent behaviors and linking the transition to the emergence of hydrodynamic descriptions.
Contribution
It introduces a comprehensive analysis of SW-SSB in quantum and classical systems, connecting symmetry breaking to hydrodynamics and information inference.
Findings
In 1D, correlators develop order faster than charge diffusion.
In 2D, a finite-time BKT-like transition occurs.
SW-SSB signifies the onset of continuum hydrodynamics.
Abstract
We explore the onset of spontaneous strong-to-weak symmetry breaking (SW-SSB) under U(1)-symmetric (i.e., charge-conserving) open-system dynamics. We define this phenomenon for quantum states and classical probability distributions, and explore it in three complementary models, one of which exhibits nontrivial quantum coherence at short times. Our main conclusions are as follows. In one dimension, the strong symmetry is not spontaneously broken at any finite time; however, correlators probing strong-to-weak symmetry breaking develop order on length scales that grow linearly in time, parametrically faster than charge diffusion. We provide numerical evidence for this scaling in multiple distinct probes of SW-SSB, and derive it from a field-theory analysis. Moreover, we relate this scaling to the problem of inferring the charge inside a subregion by measuring its surroundings, and…
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Taxonomy
TopicsSpectroscopy and Quantum Chemical Studies · Quantum Mechanics and Applications · Quantum chaos and dynamical systems
