Strong-to-Weak Spontaneous Symmetry Breaking in Mixed Quantum States I
ORAL
Abstract
Symmetry in mixed quantum states can manifest in two distinct forms: strong symmetry, where each individual pure state in the quantum ensemble is symmetric with the same charge, and weak symmetry, which applies only to the entire ensemble. In a two-part series, we explore a novel type of spontaneous symmetry breaking (SSB) where a strong symmetry is broken to a weak one. While the SSB of a weak symmetry is measured by the long-ranged two-point correlation function〈OxOy†〉, the strong-to-weak SSB (SW-SSB) is measured by the fidelity F(ρ, OxOy†ρOyOx†), dubbed the fidelity correlator. We prove that SW-SSB is a universal property of mixed-state quantum phases, in the sense that the phenomenon of SW-SSB is robust against symmetric low-depth local quantum channels. We argue that a thermal state at a nonzero temperature in the canonical ensemble (with fixed symmetry charge) should have spontaneously broken strong symmetry. Additionally, we study non-thermal scenarios where decoherence induces SW-SSB, leading to phase transitions described by classical statistical models with bond randomness. In particular, the SW-SSB transition of a decohered Ising model can be viewed as the "ungauged" version of the celebrated toric code decodability transition. We confirm that, in the decohered Ising model, the SW-SSB transition defined by the fidelity correlator is the only physical transition in terms of channel recoverability. We also comment on other (inequivalent) definitions of SW-SSB, through correlation functions with higher Rényi indices.
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Publication: Preprint on arxiv: https://arxiv.org/abs/2405.03639
Presenters
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Leonardo A Lessa
Perimeter Inst for Theo Phys
Authors
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Leonardo A Lessa
Perimeter Inst for Theo Phys
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Ruochen Ma
Perimeter Inst for Theo Phys
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Jianhao Zhang
University of Colorado Boulder
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Zhen Bi
Pennsylvania State University
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Meng Cheng
Yale University
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Chong Wang
Perimeter Inst for Theo Phys, Perimeter Institute