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February 11, 20260 citationsOpen Access

DARKSKIES: A suite of super-sampled zoom-in simulations of galaxy clusters with self-interacting dark matter

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DHDavid HarveyYRYves RevazMSMatthieu Schaller

Key Points

  • The research aims to investigate the dynamics of galaxy clusters under self-interacting dark matter conditions.
  • Conducted one hundred zoom-in hydrodynamic simulations of massive galaxy clusters.
  • Simulated dark matter with particle mass m = 0.68 × 10^8 M⊙.
  • Calibrated baryonic feedback for realistic galaxy cluster formation.
  • Tested five models of velocity-independent self-interacting dark matter.
  • Analyzed dynamics of brightest cluster galaxy in SIDM environments.
  • Density profiles showed characteristic cores even with the smallest cross-sections.
  • Cores developed in the galaxy clusters at late times (z < 0.5).
  • Identified wobbling behavior of brightest cluster galaxies unique to SIDM models.
  • Observed anti-correlation between BCG offset and its relative velocity in SIDM.

Abstract

We present the ‘DARKSKIES’ suite of one hundred, zoom-in hydrodynamic simulations of massive (M ₂₀₀ > 5 × 10 ^14 M ⊙) galaxy clusters with self-interacting dark matter (SIDM). We super-sampled the simulations such that m ₃₌ / m ₆₀ₒ ∼ 0. 1, enabling us to simulate a dark matter particle mass of m = 0. 68 × 10 ^8 M ⊙ an order of magnitude faster, whilst exploring SIDM in the core of clusters at extremely high resolution. We calibrated the baryonic feedback to produce observationally consistent and realistic galaxy clusters across all simulations and simulated five models of velocity-independent SIDM targeting the expected sensitivity of future telescopes - σ ₃₌ / m = 0. , 0. 01, 0. 05, 0. 1, 0. 2 cm ^2 /g. We find that the density profiles exhibit the characteristic core even in the smallest of cross-sections, with cores developing only at late times (z < 0. 5). We investigated the dynamics of the brightest cluster galaxy (BCG) inside the dark matter halo and find that in SIDM cosmologies there exists a so-called wobbling not observed in collisionless dark matter. We find that this wobble is driven by mass accreting onto a cored density profile with the signal peaking at z = 0. 25 and dropping thereafter. This finding is further supported by the existence of an anti-correlation between the offset between the BCG and the dark matter halo and its relative velocity in SIDM only, a hallmark of harmonic oscillation.

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Cite This Study

Harvey et al. (2025) studied this question.

synapsesocial.com/papers/698c1bcd267fb587c655dae6https://doi.org/10.5167/uzh-291143
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