Radiative equilibrium estimates of dust temperature and mass in high-redshift galaxies
arXiv:2004.12612 · doi:10.1093/mnras/staa1203
Abstract
Estimating the temperature and mass of dust in high- galaxies is essential for discussions of the origin of dust in the early Universe. However, this suffers from limited sampling of the infrared spectral-energy distribution. Here we present an algorithm for deriving the temperature and mass of dust in a galaxy, assuming dust to be in radiative equilibrium. We formulate the algorithm for three geometries: a thin spherical shell, a homogeneous sphere, and a clumpy sphere. We also discuss effects of the mass absorption coefficients of dust at ultraviolet and infrared wavelengths, and , respectively. As an example, we apply the algorithm to a normal, dusty star-forming galaxy at , A1689zD1, for which three data points in the dust continuum are available. Using cm g and cm g with , we obtain dust temperatures of 38--70~K and masses of M for the three geometries considered. We obtain similar temperatures and masses from just a single data point in the dust continuum, suggesting the usefulness of the algorithm for high- galaxies with limited infrared observations. In the clumpy-sphere case, the temperature becomes equal to that of the usual modified black-body fit, because an additional parameter describing the clumpiness works as an adjuster. The best-fit clumpiness parameter is , corresponding to \% of the volume filling factor of the clumps in this high- galaxy if the clump size is pc, similar to that of giant molecular clouds in the local Universe.
MNRAS accepted
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