Unruh deWitt probe of late time revival of quantum correlations in Friedmann spacetimes
Ankit Dhanuka, Kinjalk Lochan

TL;DR
This paper investigates how Unruh deWitt detectors respond to quantum fields in Friedmann spacetimes, revealing late-time revival of quantum correlations and the effects of infrared divergences, with implications for cosmology and gravitational wave detection.
Contribution
It demonstrates the response of Unruh deWitt detectors in FRW spacetimes, highlighting the role of derivative coupling in regulating divergences and probing late-time quantum correlations.
Findings
Derivative coupling regulates divergences in de Sitter spacetime.
Large quantum correlations revive at late times in Friedmann universes.
Hydrogen-gravitational wave coupling resembles derivatively coupled Unruh deWitt detectors.
Abstract
Unruh deWitt detectors are important constructs in studying the dynamics of quantum fields in any geometric background. Curvature also plays an important role in setting up the correlations of a quantum field in a given spacetime. For instance, massless fields are known to have large correlations in de Sitter space as well as in certain class of Friedmann-Robertson-Walker (FRW) universes. However, some of the correlations are secular in nature while some are dynamic and spacetime dependent. An Unruh deWitt detector responds to such divergences differently in different spacetimes. In this work, we study the response rate of Unruh deWitt detectors which interact with quantum fields in FRW spacetimes. We consider both conventionally as well as derivatively coupled Unruh deWitt detectors. Particularly, we consider their interaction with massless scalar fields in FRW spacetimes and nearly…
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Taxonomy
TopicsQuantum Electrodynamics and Casimir Effect · Cosmology and Gravitation Theories
