Quantum information probes of charge fractionalization in large-$N$ gauge theories
Brandon S. DiNunno, Niko Jokela, Juan F. Pedraza, Arttu P\"onni

TL;DR
This paper investigates how various information-theoretic quantities can distinguish charged sectors in large-$N$ gauge theories, especially in holographic models, by proposing a generalized entanglement measure sensitive to bulk charges.
Contribution
It introduces a generalized entanglement functional based on Iyer-Wald formalism to better probe charge fractionalization in holographic and non-holographic systems.
Findings
Butterfly velocity effectively distinguishes charged sectors.
Proposed entanglement functional captures fractionalized charge degrees of freedom.
Constructed an entropic $c$-function accounting for bulk charges.
Abstract
We study in detail various information theoretic quantities with the intent of distinguishing between different charged sectors in fractionalized states of large- gauge theories. For concreteness, we focus on a simple holographic -dimensional strongly coupled electron fluid whose charged states organize themselves into fractionalized and coherent patterns at sufficiently low temperatures. However, we expect that our results are quite generic and applicable to a wide range of systems, including non-holographic. The probes we consider include the entanglement entropy, mutual information, entanglement of purification and the butterfly velocity. The latter turns out to be particularly useful, given the universal connection between momentum and charge diffusion in the vicinity of a black hole horizon. The RT surfaces used to compute the above quantities, though, are largely…
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