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Charged Eigenstate Thermalization, Euclidean Wormholes and Global Symmetries in Quantum Gravity

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arxiv 2012.07875 v3 pith:4O5TNCMZ submitted 2020-12-14 hep-th cond-mat.str-elgr-qc

classification hep-thcond-mat.str-elgr-qc
keywords globalchargedfunctionssymmetrieschargeconservationeigenstateeuclidean
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We generalize the eigenstate thermalization hypothesis to systems with global symmetries. We present two versions, one with microscopic charge conservation and one with exponentially suppressed violations. They agree for correlation functions of simple operators, but differ in the variance of charged one-point functions at finite temperature. We then apply these ideas to holography and to gravitational low-energy effective theories with a global symmetry. We show that Euclidean wormholes predict a non-zero variance for charged one-point functions, which is incompatible with microscopic charge conservation. This implies that global symmetries in quantum gravity must either be gauged or explicitly broken by non-perturbative effects.

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Cited by 1 Pith paper

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  1. It from ETH: Multi-interval Entanglement and Replica Wormholes from Large-$c$ BCFT Ensemble

    hep-th 2025-05 conditional novelty 6.0 of 10

    The RT formula for entanglement in AdS3/CFT2, including phase transitions and multi-interval vacuum entropies, is derived from an assumed large-c ensemble of (B)CFT data, under the 'It from ETH' paradigm.

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