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May 11, 2026The Astrophysical Journal3 citationsOpen Access

The DREAMS Project: Disentangling the Impact of Halo-to-Halo Variance and Baryonic Feedback on Milky Way Dark Matter Speed Distributions

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ELEthan LilieJRJonah C. RoseMLMariangela Lisanti

Key Points

  • This research investigates how baryonic feedback and halo-to-halo variance affect the dark matter speed distribution near the Sun.
  • Utilized the DREAMS cold dark matter simulation suite with 1024 Milky Way–mass halos.
  • Applied a normalizing flows emulator to analyze speed distributions.
  • Compared predictions against the XENON1T dark matter detection experiment.
  • Halo-to-halo variance was found to dominate uncertainty in the local dark matter speed distribution.
  • Baryonic feedback's impact on speed distribution uncertainty was significantly lower.
  • Predictions suggest that astrophysical uncertainties are comparable to those faced by experimental measurements.

Abstract

Abstract Dark matter direct detection experiments require information about the local dark matter speed distribution to produce constraints on dark matter candidates, or infer their properties in the event of a discovery. In this paper, we analyze how the uncertainty in the dark matter speed distribution near the Sun is affected by baryonic feedback, halo-to-halo variance, and halo mass. To do so, we harness the statistical power of the new DREAMS cold dark matter simulation suite, which is comprised of 1024 zoom-in Milky Way–mass halos with varied initial conditions as well as cosmological and astrophysical parameters. Applying a normalizing flows emulator to these simulations, we find that the uncertainty in the local dark matter speed distribution is dominated by halo-to-halo variance and, to a lesser extent, uncertainty in host halo mass. Uncertainties in supernova and black hole feedback (from the IllustrisTNG model in this case) are negligible in comparison. Using the DREAMS suite, we present a state-of-the-art prediction for the dark matter speed distribution in the Milky Way. Although the standard halo model is contained within the uncertainty of this prediction, individual galaxies may have distributions that differ from it. Lastly, we apply our DREAMS results to the XENON1T experiment and demonstrate that the astrophysical uncertainties are comparable to the experimental ones, solidifying previous results in the literature obtained with a smaller sample of simulated Milky Way–mass halos.

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Cite This Study

Lilie et al. (2026) studied this question.

synapsesocial.com/papers/6a0171473a9f334c28271966https://doi.org/10.3847/1538-4357/ae5c9b
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