4.6 Article

Exact quench dynamics of symmetry resolved entanglement in a free fermion chain

Journal

Publisher

IOP PUBLISHING LTD
DOI: 10.1088/1742-5468/ac21d7

Keywords

entanglement entropies; entanglement in extended quantum systems; quantum quenches

Funding

  1. ERC [771536]
  2. Gustave Boel-Sofina Fellowships
  3. Aspirant Fellowship from the FRS-FNRS [FC 23367]
  4. EOS [O013018F]

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Studying the entanglement dynamics is crucial for understanding the behavior of many-body quantum systems out of equilibrium. This study focuses on the time evolution of symmetry resolved entanglement in free fermion systems, with the definition and quantification of symmetry resolved mutual information. The behavior of charged entropies can be quantitatively understood in the framework of the quasiparticle picture for the spreading of entanglement.
The study of the entanglement dynamics plays a fundamental role in understanding the behaviour of many-body quantum systems out of equilibrium. In the presence of a globally conserved charge, further insights are provided by the knowledge of the resolution of entanglement in the various symmetry sectors. Here, we carry on the program we initiated in Parez et al (2021 Phys. Rev. B 103 L041104), for the study of the time evolution of the symmetry resolved entanglement in free fermion systems. We complete and extend our derivations also by defining and quantifying a symmetry resolved mutual information. The entanglement entropies display a time delay that depends on the charge sector that we characterise exactly. Both entanglement entropies and mutual information show effective equipartition in the scaling limit of large time and subsystem size. Furthermore, we argue that the behaviour of the charged entropies can be quantitatively understood in the framework of the quasiparticle picture for the spreading of entanglement, and hence we expect that a proper adaptation of our results should apply to a large class of integrable systems. We also find that the number entropy grows logarithmically with time before saturating to a value proportional to the logarithm of the subsystem size.

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