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Using Gaia Data 2 to Constrain Local Dark Matter Density and Thin Dark DiskWe use stellar kinematics from the latest Gaia data release (DR2) to measure
the local dark matter (DM) density ρDM in a heliocentric cylinder of radius R = 150 pc and
half-height z = 200 pc. We also explore the prospect of using our analysis to estimate the DM
density in local substructure by setting constraints on the surface density and scale height of
a thin dark disk aligned with the baryonic disk and formed due to dissipative dark matter
self-interactions. Performing the statistical analysis within a Bayesian framework for three
types of tracers, we obtain ρDM = 0.016 ± 0.010 Mꙩ/p c3 for A stars; early G stars give a similar result, while F stars yield a significantly higher value. For a thin dark disk, A stars set the strongest constraint: excluding surface densities (5–12) Mꙩ/pc2 for scale heights below 100 pc with 95% confidence. The upper bound of this constraint implies . 1% of the Milky Way DM mass is present in a dissipative dark sector. Comparing our results with those derived using Tycho-Gaia Astrometric Solution (TGAS) data, we find that the uncertainty in our measurements of the local DM content is dominated by systematic errors that arise from assumptions of our dynamical analysis in the low z region. Furthermore, there will only be a marginal reduction in these uncertainties with more data in the Gaia era. We comment on the robustness of our method and discuss potential improvements for future work.
Document ID
20230005289
Acquisition Source
2230 Support
Document Type
Accepted Manuscript (Version with final changes)
Authors
Jatan Buch
(Brown University Providence, Rhode Island, United States)
Shing Chau (John) Leung
(Brown University Providence, Rhode Island, United States)
JiJi Fan
(Brown University Providence, Rhode Island, United States)
Date Acquired
April 11, 2023
Publication Date
April 15, 2019
Publication Information
Publication: Journal of Cosmology and Astroparticle Physics
Publisher: IOP Publishing
Volume: 2019
Issue Publication Date: April 1, 2019
e-ISSN: 1475-7516
Subject Category
Space Sciences (General)
Funding Number(s)
CONTRACT_GRANT: 80NSSC18K1010
Distribution Limits
Public
Copyright
Use by or on behalf of the US Gov. Permitted.
Technical Review
Keywords
dark matter theory
galaxy dynamics
galaxy morphology
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