Abstract

Numerous theories extending beyond the standard model of particle physics predict the existence of bosons that could constitute dark matter. In the standard halo model of galactic dark matter, the velocity distribution of the bosonic dark matter field defines a characteristic coherence time τc. Until recently, laboratory experiments searching for bosonic dark matter fields have been in the regime where the measurement time T significantly exceeds τc, so null results have been interpreted by assuming a bosonic field amplitude Φ0 fixed by the average local dark matter density. Here we show that experiments operating in the T ≪ τc regime do not sample the full distribution of bosonic dark matter field amplitudes and therefore it is incorrect to assume a fixed value of Φ0 when inferring constraints. Instead, in order to interpret laboratory measurements (even in the event of a discovery), it is necessary to account for the stochastic nature of such a virialized ultralight field. The constraints inferred from several previous null experiments searching for ultralight bosonic dark matter were overestimated by factors ranging from 3 to 10 depending on experimental details, model assumptions, and choice of inference framework.

Highlights

  • Numerous theories extending beyond the standard model of particle physics predict the existence of bosons that could constitute dark matter

  • standard halo model (SHM) dark matter (DM) model, we demonstrate the general weakening of inferred constraints due to the statistical properties of the virialized ultralight field (VULF)[21,22,23,24]

  • At short time scales (≪τc), the field coherently oscillates at the Compton frequency, see the inset of Fig. 1, where the amplitude Φ0 is fixed at a single value sampled from its distribution

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Summary

Introduction

Numerous theories extending beyond the standard model of particle physics predict the existence of bosons that could constitute dark matter. We show that for experiments operating in the T ≪ τc regime it is incorrect to assume a fixed value of Φ0 when inferring constraints on the coupling strength of bosonic DM to standardmodel particles. The constraints inferred from several previous null experiments searching for ultralight bosonic DM were overestimated by factors ranging from 3 to 10 depending on experimental details, model assumptions, and choice of inference framework.

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