Relational entanglement entropies and quantum reference frames in gauge theories
Goncalo Araujo-Regado, Philipp A. Hoehn, Francesco Sartini

TL;DR
This paper introduces a relational approach to defining gauge-invariant entanglement entropies in lattice gauge theories using quantum reference frames, which clarifies the algebraic structure and bounds of entanglement measures.
Contribution
It develops a framework for relational entanglement entropies in lattice gauge theories using QRFs, unifying previous approaches and clarifying the algebraic and symmetry structures involved.
Findings
Relational definitions regularize entanglement entropies without UV divergences.
Distinguishes extrinsic and intrinsic QRFs, leading to different algebraic structures.
Establishes bounds between relational and center entropies.
Abstract
It has been shown that defining gravitational entanglement entropies relative to quantum reference frames (QRFs) intrinsically regularizes them. Here, we demonstrate that such relational definitions also have an advantage in lattice gauge theories, where no ultraviolet divergences occur. To this end, we introduce QRFs for the gauge group via Wilson lines on a lattice with global boundary, realizing edge modes on the bulk entangling surface. Overcoming challenges of previous nonrelational approaches, we show that defining gauge-invariant subsystems associated with subregions relative to such QRFs naturally leads to a factorization across the surface, yielding distillable relational entanglement entropies. Distinguishing between extrinsic and intrinsic QRFs, according to whether they are built from the region or its complement, leads to extrinsic and intrinsic relational algebras ascribed…
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Taxonomy
TopicsQuantum many-body systems · Black Holes and Theoretical Physics · Quantum Mechanics and Non-Hermitian Physics
