The recent discovery of dusty galaxies well into the Epoch of Reionization (redshift z>6) poses challenging questions about the properties of the interstellar medium in these pristine systems. By combining state-of-the-art hydrodynamic and dust radiative transfer simulations, we address these questions focusing on the recently discovered dusty galaxy A2744_YD4 (z=8.38, Laporte et al. 2017}). We show that we can reproduce the observed spectral energy distribution (SED) only using different physical values with respect to the inferred ones by Laporte et al(2017), i.e. a star formation rate of SFR=78M⊙yr−1, a factor ≈4 higher than deduced from simple Spectral Energy Distribution fitting. In this case we find: (a) dust attenuation (corresponding to τV=1.4) is consistent with a Milky Way extinction curve; (b) the dust-to-metal ratio is low, fd∼0.08, implying that early dust formation is rather inefficient; (c) the luminosity-weighted dust temperature is high, Td=91±23K, as a result of the intense (≈100× MW) interstellar radiation field; (d) due to the high Td, the ALMA Band 7 detection can be explained by a limited dust mass, Md=1.6×106M⊙. Finally, the high dust temperatures might solve the puzzling low infrared excess recently deduced for high-z galaxies from the IRX-β relation.
@article{arxiv.1802.07772,
title = {Dusty galaxies in the Epoch of Reionization: simulations},
author = {C. Behrens and A. Pallottini and A. Ferrara and S. Gallerani and L. Vallini},
journal= {arXiv preprint arXiv:1802.07772},
year = {2018}
}