The UDF05 Follow-up of the HUDF: II. Constraints on Reionization from z-dropout Galaxies
P. A. Oesch, C. M. Carollo, M. Stiavelli, M. Trenti, L. E. Bergeron,, A. M. Koekemoer, R. A. Lucas, C. M. Pavlovsky, S. V. W. Beckwith, T. Dahlen,, H. C. Ferguson, Jonathan P. Gardner, S. J. Lilly, B. Mobasher, N. Panagia

TL;DR
This study uses z-dropout galaxies from the UDF05 HST NICMOS images to constrain the galaxy luminosity function at z~7, providing insights into star formation history and reionization, with implications for galaxy evolution models.
Contribution
It presents new measurements of the galaxy luminosity function at z~7 and explores its evolution, offering constraints on reionization and early star formation.
Findings
Steady evolution of the luminosity function from z~3 to 7.
Galaxies could reionize the universe by z~6 if certain conditions are met.
Detected z-dropout candidates support a gradual change in galaxy brightness over time.
Abstract
[Abridged] We detect three (plus one less certain) z-dropout sources in two separate fields of our UDF05 HST NICMOS images. These z~7 Lyman-Break Galaxy (LBG) candidates allow us to constrain the Luminosity Function (LF) of the star forming galaxy population at those epochs. By assuming a change in only M* and adopting a linear evolution in redshift, anchored to the measured values at z~6, the best fit evolution coefficient is found to be 0.43+-0.19 mag per unit redshift (0.36+-0.18, if including all four candidates), which provides a value of M*(z=7.2)=-19.7+-0.3. This implies a steady evolution for the LBG LF out to z~7, at the same rate that is observed throughout the z~3 to 6 period. This puts a strong constraint on the star-formation histories of z~6 galaxies, whose ensemble star-formation rate density must be lower by a factor 2 at ~170 Myr before the epoch at which they are…
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