What is the amount of baryonic dark matter in galaxies?
arXiv:2411.17775 · doi:10.1016/j.dark.2024.101730
Abstract
In this paper, we re-evaluate the estimates of dust mass in galaxies and demonstrate that current dust models are incomplete and based on a priori assumptions. These models suffer from a circularity problem and account for only a small portion of dust, specifically submicron-sized grains. They overlook larger dust particles and other macroscopic bodies, despite observational evidence supporting their existence. This evidence includes the observed (sub)millimeter excess in dust emission spectra and the power-law size distribution with an index γ ~ 3.5-4.0, which has been measured for large particles and compact bodies across diverse environments. Examples of these large particles include large dust grains and meteoroids detected by satellites, near-Earth objects colliding with Earth, fragments in the Main Asteroid Belt and the Kuiper Belt, interstellar 'Oumuamua-like objects, and exoplanets. As a result, dust-type baryonic dark matter may be more abundant throughout the galaxy by one order of magnitude or even more than previously assumed, with a significant portion of its mass concentrated in large compact bodies. Additionally, black holes may contribute significantly to the total mass of baryonic dark matter. Consequently, current galaxy models do not provide reliable estimates of baryonic mass in galaxies. Clearly, a substantially larger amount of baryonic dark matter in galaxies would have major implications for theories of galaxy dynamics and evolution.
19 pages, 4 figures
References in corpus (22)
- Infrared Emission from Interstellar Dust. IV. The Silicate-Graphite-PAH Model in the Post-Spitzer Era
- A simple model to interpret the ultraviolet, optical and infrared emission from galaxies
- Planck intermediate results. XIX. An overview of the polarized thermal emission from Galactic dust
- A dusty, normal galaxy in the epoch of reionization
- A CEERS Discovery of an Accreting Supermassive Black Hole 570 Myr after the Big Bang: Identifying a Progenitor of Massive z > 6 Quasars
- Dust in the reionization era: ALMA observations of a =8.38 Galaxy
- Radiative Transfer Modeling of Three-Dimensional Clumpy AGN Tori and its Application to NGC 1068
- Galaxies as simple dynamical systems: observational data disfavor dark matter and stochastic star formation
- Dust and Gas in the Magellanic Clouds from the HERITAGE Herschel Key Project. I. Dust Properties and Insights into the Origin of the Submm Excess Emission
- A planetesimal orbiting within the debris disc around a white dwarf star
- Interstellar Dust Inside and Outside the Heliosphere
- Spectroscopy and thermal modelling of the first interstellar object 1I/2017 U1 'Oumuamua
- Modeling Dust and Starlight in Galaxies Observed by Spitzer and Herschel: The KINGFISH Sample
- APO Time Resolved Color Photometry of Highly-Elongated Interstellar Object 1I/'Oumuamua
- Updated 34-Band Photometry for the SINGS/KINGFISH Samples of Nearby Galaxies
- Testing MOND Over a Wide Acceleration Range in X-Ray Ellipticals
- Macroscopic Dust in Protoplanetary Disks - From Growth to Destruction
- Radiative equilibrium estimates of dust temperature and mass in high-redshift galaxies
- The Dawn of Dust Astronomy
- Infrared luminosity functions and dust mass functions in the EAGLE simulation
- Radio Emission from Accreting Isolated Black Holes in Our Galaxy
- Gravitational orbits in the expanding universe revisited