On Vacuum Fluctuations in Quantum Gravity and Interferometer Arm Fluctuations
Kathryn M. Zurek

TL;DR
This paper models vacuum fluctuations in quantum gravity inspired by AdS/CFT, suggesting they could produce observable effects in interferometer experiments similar to gravitational wave detection.
Contribution
It introduces a simple flat-space model of vacuum fluctuations based on holographic principles, linking quantum gravity effects to potential experimental observations.
Findings
Vacuum fluctuations can produce measurable metric noise in interferometers.
A high occupation number bosonic model reproduces key holographic fluctuation features.
Predicted fluctuations could be detectable with upcoming interferometer sensitivities.
Abstract
We propose a simple model of spacetime vacuum fluctuations motivated by AdS/CFT, where the vacuum is described by a thermal density matrix, with the modular Hamiltonian. In AdS/CFT, both the expectation value of and its fluctuations have been calculated; both obey an area law identical to the Bekenstein-Hawking area law of black hole mechanics: , where is the area of an (extremal) entangling surface. It has also been shown that gravitates in AdS, and hence generates metric fluctuations. These theoretical results are intriguing, but it is not known how to precisely extend such ideas about holographic quantum gravity to ordinary flat space. We take the approach of considering whether experimental signatures in metric fluctuations…
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