Symmetry Classification of Typical Quantum Entanglement

ORAL

Abstract

Entanglement entropy of typical quantum states, also known as the Page curve, plays an important role in quantum many-body systems and quantum gravity. However, the role of symmetry has remained largely unclear. Here, we establish the classification of typical quantum entanglement for free fermions, or equivalently the quadratic Sachdev-Ye-Kitaev model with symmetry, on the basis of the tenfold fundamental symmetry classes of time reversal, charge conjugation, and chiral transformation. Through both analytical and numerical calculations of random matrix theory, we show that the volume-law contribution to average entanglement entropy is robust and remains unaffected by symmetry. Conversely, we uncover that the constant terms of the average and variance of entanglement entropy yield tenfold universal values unique to each symmetry class. These constant terms originate from the combination of a global scaling of the entanglement spectrum due to time-reversal symmetry and a singular peak at the center of the entanglement spectrum due to chiral or particle-hole symmetry.

* National Science Foundation under Grant No. NSF PHY-1748958, the Heising-Simons Foundation, the Simons Foundation (216179, LB), the National Science Foundation under Award No. DMR-2001181, National Science Foundation under Grant No. PHY-2207584, Japan Society for the Promotion of Science (JSPS) through the Overseas Research Fellowship, the Gordon and Betty Moore Foundation through Grant GBMF8685

Publication: Phys. Rev. B 108, 085109 (2023)

Presenters

  • Yuhan Liu

    Max Planck Institute of Quantum Optics

Authors

  • Yuhan Liu

    Max Planck Institute of Quantum Optics

  • Jonah Kudler-Flam

    Institute for Advanced Study, Princeton, School of Natural Sciences, Institute for Advanced Study, Princeton, Institute of Advanced Study

  • Kohei Kawabata

    Institute for Solid State Physics, University of Tokyo