Disk Formation and the Size-sSFR Relation of Dwarf Galaxies

Fuente: arXiv
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Main Authors: Geda, Robel, Cruz, Akaxia, Wright, Anna C., Greene, Jenny E., Brooks, Alyson, Quinn, Thomas, Wadsley, James, Keller, Ben
Format: Preprint
Published: 2025
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author Geda, Robel
Cruz, Akaxia
Wright, Anna C.
Greene, Jenny E.
Brooks, Alyson
Quinn, Thomas
Wadsley, James
Keller, Ben
author_facet Geda, Robel
Cruz, Akaxia
Wright, Anna C.
Greene, Jenny E.
Brooks, Alyson
Quinn, Thomas
Wadsley, James
Keller, Ben
contents Dwarf galaxies are dark matter-dominated systems that are sensitive to feedback and display a diversity of baryonic morphologies. This makes them excellent probes for understanding dark matter and galaxy evolution. This work investigates the physical processes that influence the sizes of isolated dwarf galaxies using high-resolution cosmological zoom-in simulations of $39$ dwarf galaxies drawn from the Marvelous Massive Dwarfs simulation suite ($7.5 < \log(M_{\star}/M_{\odot}) < 9.1$). Our simulations show that dwarf galaxies initially form as compact galaxies ($R_e < 2$ kpc). However, several of these galaxies ($54\%$) experience periods of gradual size growth at relatively stable sSFR, allowing them to become extended galaxies. We find that the growth of rotation-supported stellar disks is the primary means by which isolated dwarfs become extended in size. These stellar disks are formed by mergers with high orbital angular momentum satellites on high angular momentum (spiraling-in) orbits, which spin up the gas surrounding the central galaxy and contribute $\approx 30 \%$ of the cold gas mass at $z=0$. For these systems, star formation in the angular momentum supported gas and the gradual build up of stars in the disk result in secular size growth.
format Preprint
id arxiv_https___arxiv_org_abs_2510_26875
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Disk Formation and the Size-sSFR Relation of Dwarf Galaxies
Geda, Robel
Cruz, Akaxia
Wright, Anna C.
Greene, Jenny E.
Brooks, Alyson
Quinn, Thomas
Wadsley, James
Keller, Ben
Astrophysics of Galaxies
Dwarf galaxies are dark matter-dominated systems that are sensitive to feedback and display a diversity of baryonic morphologies. This makes them excellent probes for understanding dark matter and galaxy evolution. This work investigates the physical processes that influence the sizes of isolated dwarf galaxies using high-resolution cosmological zoom-in simulations of $39$ dwarf galaxies drawn from the Marvelous Massive Dwarfs simulation suite ($7.5 < \log(M_{\star}/M_{\odot}) < 9.1$). Our simulations show that dwarf galaxies initially form as compact galaxies ($R_e < 2$ kpc). However, several of these galaxies ($54\%$) experience periods of gradual size growth at relatively stable sSFR, allowing them to become extended galaxies. We find that the growth of rotation-supported stellar disks is the primary means by which isolated dwarfs become extended in size. These stellar disks are formed by mergers with high orbital angular momentum satellites on high angular momentum (spiraling-in) orbits, which spin up the gas surrounding the central galaxy and contribute $\approx 30 \%$ of the cold gas mass at $z=0$. For these systems, star formation in the angular momentum supported gas and the gradual build up of stars in the disk result in secular size growth.
title Disk Formation and the Size-sSFR Relation of Dwarf Galaxies
topic Astrophysics of Galaxies
url https://arxiv.org/abs/2510.26875