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Testing screened scalar-tensor theories of gravity with atomic clocks

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arxiv 2410.17292 v2 pith:UXVD4CCY submitted 2024-10-21 gr-qc astro-ph.IM

classification gr-qcastro-ph.IM
keywords gravityscalar-tensorredshiftscreenedtestingatomicchameleonclocks
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In any scalar-tensor theory of gravity exhibiting a screening mechanism, the fifth force mediated by the scalar field is dynamically suppressed at sub-Solar system scales, allowing it to pass existing tests of gravity. As a result, a major research effort has been carried out over the past decades to `outsmart' screened scalars in this game of hide-and-seek. While most of such tests rely on fifth force effects, one should keep in mind that the latter are by no means the only physical feature of scalar-tensor gravity. In particular, this article investigates the possibility of testing screened scalar-tensor models by means of gravitational redshift measurements performed with atomic clocks. Upon deriving the expression for the redshift in this framework, we propose a thought experiment for testing the chameleon model by clock comparisons, which guides us towards more realistic experimental setups, in the laboratory and in space. We find that currently unconstrained regions of the chameleon parameter space could be ruled out by future redshift experiments.

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  1. Scalar-tensor theories at different scales: averaging the scalar sector

    gr-qc 2025-05 conditional novelty 6.0 of 10

    Averaging matter before solving the Klein-Gordon equation mis-estimates the coarse-grained scalar-field energy density and pressure, by factors up to about 10^5 for a Yukawa model and with mean-field deviations exceed...

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