English

Testing extreme-axion wave dark matter using the BOSS Lyman-Alpha forest data

Cosmology and Nongalactic Astrophysics 2019-02-20 v1

Abstract

Using cosmological particle hydrodynamical simulations and uniform ultraviolet backgrounds, we compare Lyman-α\alpha forest flux spectra predicted by the conventional cold dark matter (CDM) model, the free-particle wave dark matter (FPψ\psiDM) model and extreme-axion wave dark matter (EAψ\psiDM) models of different initial axion field angles against the BOSS Lyman-α\alpha forest absorption spectra with a fixed boson mass mb1022m_b\sim 10^{-22}eV. We recover results reported previously (Ir\v{s}i\v{c} et al. 2017b; Armengaud et al. 2017) that the CDM model agrees better with the BOSS data than the FPψ\psiDM model by a large margin, and we find the difference of total χ2\chi^2's is 120120 for 420420 data bins. These previous results demand a larger boson mass by a factor >10>10 to be consistent with the date and are in tension with the favoured value determined from local satellite galaxies. We however find that such tension is removed as some EAψ\psiDM models predict Lyman-α\alpha flux spectra agreeing better with the BOSS data than the CDM model, and the difference of total χ2\chi^2's can be as large as 2424 for the same bin number. This finding arises with no surprise since EAψ\psiDM models have unique spectral shapes with spectral bumps in excess of the CDM power near the small-scale cutoff typical of ψ\psiDM linear matter power spectra as well as more extended cutoffs than FPψ\psiDM (Zhang & Chiueh 2017a,b).

Keywords

Cite

@article{arxiv.1810.05930,
  title  = {Testing extreme-axion wave dark matter using the BOSS Lyman-Alpha forest data},
  author = {Ka-Hou Leong and Hsi-Yu Schive and Ui-Han Zhang and Tzihong Chiueh},
  journal= {arXiv preprint arXiv:1810.05930},
  year   = {2019}
}
R2 v1 2026-06-23T04:38:44.445Z