Cosmological structure formation in complex scalar field dark matter versus real ultralight axions: a comparative study using CLASS
Horst Foidl, Tanja Rindler-Daller

TL;DR
This study compares complex scalar field dark matter and real ultralight axions in cosmology, analyzing their effects on structure formation, CMB, and matter power spectra using a modified CLASS code, revealing key differences and constraints.
Contribution
It introduces a modified CLASS code to incorporate complex SFDM physics, including the early stiff phase, and compares its cosmological predictions with ULAs and FDM models.
Findings
SFDM with large cores is disfavored by small-scale structure constraints.
Differences in power spectra are due to the phase kinetic energy and Jeans mass evolution.
Complex SFDM and ULAs show distinct features in structure formation and power spectra.
Abstract
(abridged) We continue the study of SFDM cosmologies, which differ from CDM in that CDM is replaced by scalar field dark matter (SFDM) by calculating the evolution of the background Universe, as well as linear perturbations, focusing on scalar modes. We consider models with complex scalar field with a repulsive, quartic self-interaction (SI), and models without SI, referred to as fuzzy dark matter (FDM). To this end, we modify the Boltzmann code CLASS, to incorporate the physics of complex SFDM which has as one of its characteristics that its equation of state is maximally stiff in the very early Universe, dominating then over all the other cosmic components, even over radiation. We calculate CMB and matter power spectra as well as unconditional Press-Schechter halo mass functions for various models, expanding previous literature that were limited either to the…
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