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Novel approaches to dark-matter detection using space-time separated clocks

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arxiv 1902.07192 v5 pith:IXKFR24M submitted 2019-02-19 gr-qc physics.atom-ph

Novel approaches to dark-matter detection using space-time separated clocks

classification gr-qc physics.atom-ph
keywords space-timeexperimentsseparatedclockfieldallowinganalysisapproaches
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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We discuss the theoretical analysis and interpretation of space-time separated clock experiments in the context of a space-time varying scalar field that is non-universally coupled to the standard model fields. If massive, such a field is a candidate for dark matter and could be detected in laboratory experiments. We show that space-time separated experiments have the potential to probe a fundamentally different parameter space from more common co-located experiments, allowing decorrelation of previously necessarily correlated parameters. Finally, we describe such a space-time separated clock experiment currently running at the Paris Observatory, and present some preliminary results as a proof of principle.

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