Boosting line intensity map signal-to-noise ratio with the Ly-α forest cross-correlation

Author:

Qezlou Mahdi12ORCID,Bird Simeon1ORCID,Lidz Adam3,Sun Guochao4,Newman Andrew B2,Rudie Gwen C2,Ni Yueying56,Croft Rupert5,Di Matteo Tiziana57ORCID

Affiliation:

1. Department of Physics and Astronomy, University of California Riverside , 900 University Ave, Riverside, CA 92521 , USA

2. The Observatories of the Carnegie Institution for Science , 813 Santa Barbara Street, Pasadena, CA 91101 , USA

3. Center for Particle Cosmology, Department of Physics and Astronomy, University of Pennsylvania , Philadelphia, PA 19104 , USA

4. California Institute of Technology , 1200 E. California Blvd., Pasadena, CA 91125 , USA

5. McWilliams Center for Cosmology, Department of Physics, Carnegie Mellon University , Pittsburgh, PA 15213 , USA

6. Harvard–Smithsonian Center for Astrophysics , 60 Garden Street, Cambridge, MA 02138 , USA

7. NSF AI Planning Institute for Physics of the Future, Carnegie Mellon University , Pittsburgh, PA 15213 , USA

Abstract

ABSTRACT We forecast the prospects for cross-correlating future line intensity mapping (LIM) surveys with the current and future Ly-α forest measurements. Using large cosmological hydrodynamic simulations, we model the emission from the CO rotational transition in the CO Mapping Array Project LIM experiment at the 5-yr benchmark and the Ly-α forest absorption signal for extended Baryon Acoustic Oscillations (BOSS), Dark energy survey instrument (DESI), and Prime Focus multiplex Spectroscopy survey (PFS). We show that CO × Ly-α forest significantly enhances the detection signal-to-noise ratio (S/N) of CO, with up to $300{{\ \rm per\, cent}}$ improvement when correlated with the PFS Ly-α forest survey and a 50–75 per cent enhancement with the available eBOSS or the upcoming DESI observations. This is competitive with even CO × spectroscopic galaxy surveys. Furthermore, our study suggests that the clustering of CO emission is tightly constrained by CO × Ly-α forest due to the increased sensitivity and the simplicity of Ly-α absorption modelling. Foreground contamination or systematics are expected not to be shared between LIM and Ly-α forest observations, providing an unbiased inference. Ly-α forest will aid in detecting the first LIM signals. We also estimate that [C ii] × Ly-α forest measurements from Experiment for Cryogenic Large-Aperture Intensity Mapping and DESI/eBOSS should have a larger S/N than planned [C ii] × quasar observations by about an order of magnitude.

Funder

National Science Foundation

Publisher

Oxford University Press (OUP)

Subject

Space and Planetary Science,Astronomy and Astrophysics

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