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The Rise and Fall of Dust in the Universe

2024/02/07 by S. Eales, Eales, Stephen, Bradley Ward +1
Physics and Astronomy · #Astrophysics of Galaxies (astro-ph.GA) #FOS: Physical sciences #Space Science and Extraterrestrial Life

paper · pdf · doi:10.48550/arxiv.2402.05181

openalex publication_date 2024/02/07 · openalex created_date 2025/10/10 · openalex updated_date 2026/07/28

Abstract

We estimate how the mean density of dust in the universe varies with redshift, using submillimetre continuum observations and a method designed to minimise the effect of dust temperature. We have used the Herschel-ATLAS to show that the median temperature of dust in galaxies is ~22 K and does not vary significantly with redshift out to z=1. With this as our estimate of the mass-weighted dust temperature, we have used an 850-micron survey of the COSMOS field to estimate the mean density of dust in 10 redshift bins over the range 0 < z < 5.5. We find that the mean density of dust increased by a factor of ~10 from z=5 to z=2, declined slightly to z=1, and then steeply to the present day. The relationship between the mean density of dust and redshift is similar to the relationship between the mean star-formation rate and redshift, although the increase for the former is steeper from z=5 to z=2. We have also used the submillimetre measurements to estimate the mean density of gas over the same redshift range. The values we estimate for the dust-traced gas are much lower and with a different redshift dependence than estimates of the mean density of atomic gas but similar to estimates of the mean density of the CO-traced gas. We find that the depletion time for the dust-traced gas in the universe as a whole declines with redshift in the same way seen for individual galaxies.

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