Gravitational Wave Signatures of Dark Matter in Binary Neutron Star Mergers

ORAL  · Invited

Abstract

Compact stars due to their enormous gravitational field can accumulate a sizable amount of dark matter in their interior. Depending on its nature, accumulated dark matter may affect the properties of neutron stars in quite different ways. I will give an overview of the impact of dark matter on various observable properties of neutron stars, i.e. the mass-radius relation, tidal deformability, merger dynamics, gravitational waveform, thermal evolution, etc. For two scenarios, asymmetric fermionic and bosonic dark matter, the conditions at which dark matter particles tend to condense in the core of the star or create an extended halo will be presented. I will show how dark matter condensed in a core tends to decrease the total gravitational mass and tidal deformability compared to a pure baryonic star, which appears as an effective softening of the equation of state. On the other hand, the presence of a dark matter halo has the opposite effect, causing an increase in those observable quantities. Thus, observational data on compact stars could be affected by accumulated dark matter and, consequently, constraints we put on the strongly interacting matter at high densities.

In addition, I will review the effect of dark matter on binary neutron star mergers and emitted gravitational wave signals. I will present the numerical-relativity simulations of compact stars admixed with the dark matter component and discuss how the present and next-generation gravitational wave telescopes could shed light on dark matter-admixed compact stars and constrain the dark matter properties.

*V. S. acknowledges the support from the STFC/UKRI-funded project "The next-generation gravitational-wave observatory infrastructure". E. G. and C. P. acknowledge the support from Fundação para a Ciência e a Tecnologia within the projects UIDP/04564/2020 and UIDB/04564/2020, The simulations were performed on the supercomputer HPE Apollo Hawk at the High-Performance Computing (HPC) Center Stuttgart (HLRS) under the grant number GWanalysis/44189, on the GCS Supercomputer SuperMUC NG at the Leibniz Supercomputing Centre (LRZ) [project pn29ba], and on the HPC systems Lise/Emmy of the North German Supercomputing Alliance (HLRN) [project bbp00049].

Publication: E. Giangrandi, H. Rüter, M. Emma, N. Kunert, A, Adhikari, W. Tichy, V. Sagun, T. Dietrich, C. Providência, Gravitational wave signatures of dark matter in binary neutron star mergers, In prep. (2025)

H. Koehn, E. Giangrandi, N. Kunert, R. Somasundaram, V. Sagun, T. Dietrich, The impact of dark matter on tidal signatures in neutron star mergers with Einstein Telescope, Preprint arXiv: 2408.14711 [astro-ph.HE] (2024) (Accepted to PRD)

H. R. Rüter, V. Sagun, W. Tichy, T. Dietrich, Quasi-equilibrium configurations of binary systems of dark matter admixed neutron stars, Phys. Rev. D, 108, 124080 (2023); DOI: 10.1103/PhysRevD.108.124080

E. Giangrandi, V. Sagun, O. Ivanytskyi, C. Providência, T. Dietrich, The effect of self-interacting bosonic dark matter on neutron star properties, Astroph. J., 953, 115 (2023); DOI: 10.3847/1538-4357/ace104

Presenters

  • Violetta Sagun

    • University of Southampton

Authors

  • Violetta Sagun

    • University of Southampton
  • Ananya Adhikari

    • Florida Atlantic University
  • Tim Dietrich

    • University of Potsdam
  • Mattia Emma

    • Royal Holloway University of London
  • Edoardo Giangrandi

    • University of Coimbra/University of Potsdam
  • Hauke Koehn

    • University of Potsdam
  • Nina Kunert

    • University of Potsdam
  • Constança Providência

    • University of Coimbra
  • Hannes R Rüter

    • Instituto Superior Técnico, University of Lisbon
  • Rahul Somasundaram

    • Los Alamos National Lab (LANL), Syracuse University
  • Wolfgang H Tichy

    • Florida Atlantic University
  • Oleksii Ivanytskyi

    • University of Wroclaw