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Thermality, causality and the quantum-controlled Unruh-deWitt detector

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arxiv 2005.03914 v5 pith:PQLC6O2G submitted 2020-05-08 quant-ph gr-qc

classification quant-phgr-qc
keywords detectorfieldclassicalglobalinformationprobequantumquantum-controlled
verification ladder T0 review T1 audit T2 compute T3 formal
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Particle detector models such as the Unruh-deWitt detector are widely used in relativistic quantum information and field theory to probe the global features of spacetime and quantum fields. These detectors are typically modelled as coupling locally to the field along a classical worldline. In this paper, we utilize a recent framework which enables us to prepare the detector in a quantum-controlled superposition of trajectories, and study its response to the field in finite-temperature Minkowski spacetime and an expanding de Sitter universe. Unlike a detector on a classical path which cannot distinguish these spacetimes, the superposed detector can do so by acquiring nonlocal information about the geometric and causal structure of its environment, demonstrating its capability as a probe of these global properties.

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Cited by 2 Pith papers

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  2. Superposed circular motion Unruh effect in (3+1) dimensions

    quant-ph 2026-07 conditional novelty 5.0 of 10

    Superpositions of circular Unruh-DeWitt trajectories yield only minor thermal deviations for vertically stacked circles but significant effective-temperature reduction for static-plus-orbit cases under broad Gaussian ...

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