Constraining ultralight axions with CSST weak gravitational lensing and galaxy clustering photometric surveys

Author:

Lin Hengjie12ORCID,Deng Furen12ORCID,Gong Yan123ORCID,Chen Xuelei1245

Affiliation:

1. National Astronomical Observatories, Chinese Academy of Sciences , 20A Datun Road, Beijing 100012 , China

2. School of Astronomy and Space Sciences, University of Chinese Academy of Sciences , Beijing 100049 , China

3. Science Center for China Space Station Telescope, National Astronomical Observatories, Chinese Academy of Sciences , 20A Datun Road, Beijing 100101 , China

4. Department of Physics, College of Sciences, Northeastern University , Shenyang 110819 , China

5. Centre for High Energy Physics, Peking University , Beijing 100871 , China

Abstract

ABSTRACT Ultralight axion (ULA) can be one of the potential candidates for dark matter. The extremely low mass of the ULA can lead to a de Broglie wavelength the size of galaxies which results in a suppression of the growth of structure on small scales. In this work, we forecast the constraint on the ULA particle mass ma and relative fraction to dark matter fa = Ωa/Ωd for the forthcoming Stage IV space-based optical survey equipment CSST (China Space Station Telescope). We focus on the CSST cosmic shear and galaxy clustering photometric surveys, and forecast the measurements of shear, galaxy, and galaxy–galaxy lensing power spectra (i.e. 3 × 2 pt). The effects of neutrino, baryonic feedback, and uncertainties of intrinsic alignment, shear calibration, galaxy bias, and photometric redshift are also included in the analysis. After performing a joint constraint on all the cosmological and systematical parameters based on the simulated data from the theoretical prediction, we obtain a lower limit of the ULA particle mass log10 (ma/eV) ≥ −22.5 and an upper limit of the ULA fraction fa ≤ 0.83 at 95 per cent confidence level, and log10 (ma/eV) ≥ −21.9 with fa ≤ 0.77 when ignoring the baryonic feedback. We find that the CSST photometric surveys can improve the constraint on the ULA mass by about one order of magnitude, compared to the current constraints using the same kind of observational data.

Funder

National Key Research and Development Program of China

CAS

National Natural Science Foundation of China

Chinese Academy of Sciences

Publisher

Oxford University Press (OUP)

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