The impact of the IGM thermal state on the Lyα flux 3D power spectrum from linear to highly non-linear scales
Tomáš Šoltinský, Gabriele Autieri, Vid Iršič, Matteo Viel
Abstract
Recently initiated and upcoming spectroscopic surveys, such as DESI and WST, will provide more than 106 high-z quasar spectra, enabling dense sky coverage by the Lyα forest. This is expected to establish the three-dimensional (3D) Lyα forest power spectrum, P 3D,α, as a probe of the thermal and ionization history of the intergalactic medium (IGM). To exploit this opportunity, we quantify the imprints of reionization on the post-reionization IGM using high-fidelity numerical models. We use the Sherwood and Sherwood-Relics cosmological hydrodynamical simulations with box sizes up to 160\,h-1\, cMpc to investigate the impact of box size, mass resolution, and extracted grid resolution on P 3D,α over 2.4≤ z≤4.8. After applying a Zel'dovich control variate correction, simulation volume has a modest impact over most scales and orientations, whereas degrading the mass resolution produces differences of up to 13\%. Insufficient resolution of the grid used for the optical-depth calculation can artificially enhance small-scale power by up to 35\%. The timing of H\,I reionization leaves only a percent-level imprint on P 3D,α at z=2.4, whereas varying the photoheating rate by a factor of two changes the large-scale power by 4-8\%. Our results demonstrate that numerical effects can be comparable to, or exceed, the relic astrophysical signatures encoded in P 3D,α, making numerical convergence essential for interpreting precise Lyα forest measurements. The strongest astrophysical imprint arises from spatially inhomogeneous H\,I reionization, which enhances the large-scale power by up to 70\% at z=4.2. This highlights the potential of post-reionization Lyα forest measurements as a probe of the thermal history and spatial morphology of cosmic reionization.
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