Lyman-α polarization from cosmological ionization fronts: I. Radiative transfer simulations
arXiv:2302.05369 · doi:10.1088/1475-7516/2023/05/041
Abstract
In this paper, we present the formalism of simulating Lyman- emission and polarization around reionization ( = 8) from a plane-parallel ionization front. We accomplish this by using a Monte Carlo method to simulate the production of a Lyman- photon, its propagation through an ionization front, and the eventual escape of this photon. This paper focuses on the relation of the input parameters of ionization front speed , blackbody temperature , and neutral hydrogen density , on intensity and polarized intensity as seen by a distant observer. The resulting values of intensity range from erg/cm/s/sr to erg/cm/s/sr , and the polarized intensity ranges from erg/cm/s/sr to erg/cm/s/sr. We found that higher , higher , and higher contribute to higher intensity, as well as polarized intensity, though the strongest dependence was on the hydrogen density. The dependence of viewing angle of the front is also explored. We present tests to support the validity model, which makes the model suitable for further use in a following paper where we will calculate the intensity and polarized intensity power spectrum on a full reionization simulation.
29 pages, 13 figures, to be submitted to JCAP
References in corpus (9)
- Cosmic Reionization and Early Star-Forming Galaxies: A Joint Analysis of New Constraints from Planck and Hubble Space Telescope
- Observational constraints on Cosmic Reionization
- Conditions for Reionizing the Universe with A Low Galaxy Ionizing Photon Escape Fraction
- Line-Intensity Mapping: 2017 Status Report
- 21cmFAST v3: A Python-integrated C code forgenerating 3D realizations of the cosmic 21cm signal
- Mapping Neutral Hydrogen During Reionization with the Ly-alpha Emission from Quasar Ionization Fronts
- The Polarization of Scattered Lyman Alpha Radiation Around High-Redshift Galaxies
- Impact of inhomogeneous reionization on the Lyman-α forest
- Lyman- polarization from cosmological ionization fronts: II. Implications for intensity mapping