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Page curve and symmetries

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arxiv 2206.09633 v1 pith:727TMRG2 submitted 2022-06-20 hep-th cond-mat.stat-mechgr-qcquant-ph

Page curve and symmetries

classification hep-th cond-mat.stat-mechgr-qcquant-ph
keywords blackholesymmetry-resolvedconsiderentropiesevaporationmodelcase
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Motivated by the quantum process of black hole evaporation and its implications for symmetries, we consider a qubit system with a random dynamics as a toy model of black hole. We compute its symmetry-resolved entropies and discuss its implications. We first consider the case where charges are conserved and compute the symmetry-resolved entropies. We derive a symmetry-resolved analogue of the Page curve. We then consider the case where symmetry is explicitly broken and charges are no longer conserved. It serves as a toy model for global symmetry breaking in black hole evaporation. Despite the simple framework, the symmetry-resolved entropies capture various interesting features during the analogous process of black hole evaporation in our qubit model.

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  1. Typical entanglement entropy with charge conservation

    quant-ph 2026-04 unverdicted novelty 7.0

    Typical entanglement entropy with fixed global charge is given by the local thermal entropy at fixed charge density for both U(1) and SU(2) symmetries in the thermodynamic limit.