2025/05/19 by Shihong Liao, Liao, Shihong, Dimitrios Irodotou +23 · 1 voice
Physics and Astronomy · #Astrophysics of Galaxies (astro-ph.GA) #Cosmology and Nongalactic Astrophysics (astro-ph.CO) #FOS: Physical sciences #astro-ph.CO #astro-ph.GA
paper · pdf · doi:10.48550/arxiv.2505.12591
arxiv published 2025/05/19 · arxiv updated 2025/10/20
The upcoming space-based gravitational wave (GW) observatory, LISA, is expected to detect GW signals from supermassive black hole (SMBH) mergers occurring at high redshifts. However, understanding the origin and growth of SMBHs in the early Universe remains an open problem in astrophysics. In this work, we utilize the First Light And Reionization Epoch Simulations (FLARES), a suite of cosmological hydrodynamical zoom-in simulations, to study SMBH mergers at 5 \lesssim z \lesssim 10 across a wide range of environments. Most mergers in FLARES involve secondary SMBHs near the seed mass (m\rm seed ≈ 1.5 × 105~\rm M\odot) while primary SMBHs span up to 109~\rm M\odot, resulting in mass ratios from q ∼ 10-4 to 1, with a peak at q ∼ 1. The number of mergers increases rapidly towards lower redshifts, and the comoving total number density scales with overdensity as n\rm merger = 10-3.81 (1 + δ)4.78. Denser regions host more massive mergers, with higher merger redshifts and lower mass ratios. Within the FLARES redshift range, LISA is expected to detect mergers with 105 \lesssim M\rm tot/\rm M\odot \lesssim 108 and q \gtrsim 10-2, corresponding to a detection rate of 0.030~\rm yr-1 for events with signal-to-noise ratio \rm SNR ≥ 10. Our study demonstrates the sensitivity of GW predictions at high redshifts to SMBH seed models and merger time delays, highlighting the need for improved modeling in future cosmological simulations to maximize LISA's scientific return.