Reconstructing the redshift evolution of escaped ionizing flux from early galaxies with Planck and HST observations
Abstract
While galaxies at are believed to dominate the epoch of cosmic reionization, the escape fraction of ionizing flux and the photon production rate from these galaxies must vary with redshift to simultaneously match CMB and low-redshift observations. We constrain and with Planck 2015 measurements of the Thomson optical depth , recent low multipole E-mode polarization measurements from Planck 2016, SDSS BAO data, and galaxy observations. We compare different galaxy luminosity functions that are calibrated to HST observations, using both parametric and non-parametric statistical methods that marginalize over the effective clumping factor , the LyC production efficiency , and the time-evolution of the UV limiting magnitude . Using a power-law model, we find at with slope at confidence with little dependence on the galaxy luminosity function or data, although there is non-negligible probability for no redshift evolution or small escape fraction . A non-parametric form for evolves significantly with redshift, yielding at , respectively. However, a model-independent reconstruction of predicts a suppressed escaped photon production rate at for the latest Planck data compared to the other models, implying a quicker period of reionization. We find evidence for redshift evolution in the limiting magnitude of the galaxy luminosity function for empirical models of the galaxy luminosity function.
Keywords
Cite
@article{arxiv.1605.03970,
title = {Reconstructing the redshift evolution of escaped ionizing flux from early galaxies with Planck and HST observations},
author = {Layne C. Price and Hy Trac and Renyue Cen},
journal= {arXiv preprint arXiv:1605.03970},
year = {2016}
}
Comments
12 pages, 6 figures, 2 tables