The Drivers of Cosmic Dust Temperature Evolution
Abstract
Observations of the rest-frame far-infrared (far-IR) emission of galaxies suggest a mild increase of dust temperature with redshift, although constraining in high-redshift systems remains challenging due to limited sampling of the far-IR spectral energy distribution (SED). We present and discuss the redshift evolution of predicted by a cosmological galaxy evolution simulation with dust treatment, and interpret its dependence on other galaxy physical properties. We use a semi-analytic model of galaxy formation that includes an explicit treatment of dust, post-processed with radiative transfer. Dust temperatures are derived by applying modified blackbody SED fitting to the simulated galaxies, mirroring the methodology adopted in most observational studies. The dust temperature of simulated galaxies increases with redshift, in broad agreement with observational results. A feature-importance analysis reveals that the star formation rate surface density and the dust-to-gas ratio (DTG) are the main drivers of dust temperature, tracing the intensity of the interstellar radiation field and the optical depth of warm molecular clouds, respectively. Galaxies with higher star formation rate surface density and lower DTGs common conditions at high are associated with warmer dust. We provide a simple relation to estimate DTG from , , and redshift. Variations in dust grain size and chemical composition have a negligible impact on . Our results are particularly relevant to the study of dust properties with observations of high-z galaxies, where far-IR dust emission is not fully sampled.
Cite
@article{arxiv.2603.04505,
title = {The Drivers of Cosmic Dust Temperature Evolution},
author = {Massimiliano Parente and Francesco Salvestrini and Gian Luigi Granato and Desika Narayanan and Roberta Tripodi and Simone Bianchi and Manuela Bischetti and Chiara Feruglio and Fabrizio Fiore and Laura Silva},
journal= {arXiv preprint arXiv:2603.04505},
year = {2026}
}
Comments
13 pages, main results in Fig. 3 and 4. Submitted to A&A, comments welcome