Constraining bosonic asymmetric dark matter with neutron star mass-radius measurements
ORAL
Abstract
Neutron stars can accumulate asymmetric dark matter (ADM) in their interiors, which affects the neutron star's measurable properties and makes compact objects prime targets to search for ADM. In this work, we use Bayesian inference to explore potential neutron star mass-radius measurements, from current and future X-ray telescopes, to constrain the bosonic ADM parameters for the case where bosonic ADM has accumulated in the neutron star interior. We find that the high bosonic ADM particle mass (mχ) and low effective self-interaction strength (gχ/mΦ) regime is disfavored due to the observationally and theoretically motivated constraint that neutron stars must have at least a mass of 1 M_sun (solar mass). However, within the remaining parameter space, mχ and gχ/mΦ are individually unconstrained. On the other hand, the ADM mass-fraction, i.e., the fraction of ADM mass inside the neutron star, can be constrained by such neutron star measurements. The inclusion of bosonic ADM in neutron star cores also relaxes the constraints on the baryonic equation of state space.
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Publication: Nathan Rutherford, Geert Raaijmakers, Chanda Prescod-Weinstein, and Anna Watts. Constraining bosonic<br>asymmetric dark matter with neutron star mass-radius measurements. August 2022. URL http://arxiv.org/<br>abs/2208.03282. arXiv:2208.03282 [astro-ph, physics:hep-ph, physics:nucl-th]
Presenters
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Nathan Rutherford
University of New Hampshire
Authors
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Nathan Rutherford
University of New Hampshire
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Geert Raaijmakers
University of Amsterdam, GRAPPA, Anton Pannekoek Institute for Astronomy and Institute of High-Energy Physics, University of Amsterdam
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Chanda Prescod-Weinstein
University of New Hampshire
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Anna Watts
Anton Pannekoek Institute for Astronomy, University of Amsterdam