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Information in quantum field theory simulators: Thin-film superfluid helium

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arxiv 2508.07247 v1 pith:LGI2H7CY submitted 2025-08-10 quant-ph gr-qc

Information in quantum field theory simulators: Thin-film superfluid helium

classification quant-ph gr-qc
keywords quantuminformationheliumsystemsareaexperimentalfieldmutual
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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abstract

Understanding quantum correlations through information-theoretic measures is fundamental to developments in quantum field theory, quantum information, and quantum many-body physics. A central feature in a plethora of systems is the area law, under which information scales with the size of the boundary of the system, rather than volume. Whilst many systems and regimes exhibiting an area law have been identified theoretically, experimental verification remains limited, particularly in continuous systems. We present a methodology for measuring mutual information in an experimental simulator of non-interacting quantum fields, and propose using the analogue $(2 + 1)$-dimensional spacetime offered by thin films of superfluid helium. We provide numerical predictions incorporating the natural thermal state of the helium sample that exemplify an area-law scaling of mutual information, and characterise deviations attributable to the inherent finite system size.

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Cited by 1 Pith paper

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