TY - JOUR
T1 - The kinematically hot, extremely metal-poor C-19 stellar stream in DESI DR2
AU - DESI Collaboration
AU - Mohammed, Nasser
AU - Tang, Joseph Y.
AU - Li, Ting S.
AU - Koposov, Sergey E.
AU - Carlberg, Raymond G.
AU - Jarvis, Emma
AU - Li, Andrew P.
AU - Sandford, Nathan
AU - Medina, Gustavo E.
AU - Wang, Wenting
AU - Valluri, Monica
AU - Riley, Alexander H.
AU - Silva, Leandro Beraldo e
AU - Najita, Joan
AU - Lambert, Mika
AU - Li, Songting
AU - Aguilar, J.
AU - Ahlen, S.
AU - Bianchi, D.
AU - Brooks, D.
AU - Claybaugh, T.
AU - Macorra, A. de la
AU - Forero-Romero, J. E.
AU - Gaztañaga, E.
AU - Gontcho, S. Gontcho A
AU - Gutierrez, G.
AU - Joyce, R.
AU - Juneau, S.
AU - Kehoe, R.
AU - Kisner, T.
AU - Kremin, A.
AU - Landriau, M.
AU - Guillou, L. Le
AU - Manera, M.
AU - Meisner, A.
AU - Miquel, R.
AU - Nadathur, S.
AU - Percival, W. J.
AU - Prada, F.
AU - Pérez-Ràfols, I.
AU - Rossi, G.
AU - Sanchez, E.
AU - Schlegel, D.
AU - Silber, J.
AU - Sprayberry, D.
AU - Tarlé, G.
AU - Weaver, B. A.
AU - Zhou, R.
AU - Zou, H.
N1 - 28 pages, 15 figures, 6 tables. submitted to ApJ
PY - 2026/7/6
Y1 - 2026/7/6
N2 - Stellar streams are the result of a host galaxy's gravitational potential tidally disrupting satellite dwarf galaxies and globular clusters (GCs), causing them to grow leading and trailing tidal tails. The C-19 stellar stream is an extremely metal-poor stellar population, showing chemical abundance patterns characteristic of a globular cluster. However, its large velocity dispersion is difficult to reconcile with a conventional, purely baryonic, disrupting-GC progenitor. Current techniques for stream characterization are primarily applied to Gaia DR3, relying heavily on proper motion measurements. Using the Dark Energy Spectroscopic Instrument (DESI), which provides radial velocities and metallicites for over 10 million stars reaching significantly fainter magnitudes than comparable surveys, we employ a mixture model approach to jointly characterize stream populations in proper motions, radial velocities, and metallicities against a Milky Way halo background. By applying this framework to the C-19 stellar stream, we identify a total of 47 spectroscopically confirmed member stars, of which 41 are newly identified and only 6 were previously reported in the literature. In this work, we measure a velocity dispersion of $7.8^{+1.5}_{-1.3}$ km s$^{-1}$ and a mean metallicity of [Fe/H] = $-3.36^{+0.12}_{-0.10}$. We further identify a novel 'spur' feature within the stream. We conclude that our measurements are in line with previous works identifying C-19 as a 'hot', metal-poor stream. In forthcoming work, we will apply this approach to many more streams in the DESI footprint, enabling population-level comparisons with predictions from simulations.
AB - Stellar streams are the result of a host galaxy's gravitational potential tidally disrupting satellite dwarf galaxies and globular clusters (GCs), causing them to grow leading and trailing tidal tails. The C-19 stellar stream is an extremely metal-poor stellar population, showing chemical abundance patterns characteristic of a globular cluster. However, its large velocity dispersion is difficult to reconcile with a conventional, purely baryonic, disrupting-GC progenitor. Current techniques for stream characterization are primarily applied to Gaia DR3, relying heavily on proper motion measurements. Using the Dark Energy Spectroscopic Instrument (DESI), which provides radial velocities and metallicites for over 10 million stars reaching significantly fainter magnitudes than comparable surveys, we employ a mixture model approach to jointly characterize stream populations in proper motions, radial velocities, and metallicities against a Milky Way halo background. By applying this framework to the C-19 stellar stream, we identify a total of 47 spectroscopically confirmed member stars, of which 41 are newly identified and only 6 were previously reported in the literature. In this work, we measure a velocity dispersion of $7.8^{+1.5}_{-1.3}$ km s$^{-1}$ and a mean metallicity of [Fe/H] = $-3.36^{+0.12}_{-0.10}$. We further identify a novel 'spur' feature within the stream. We conclude that our measurements are in line with previous works identifying C-19 as a 'hot', metal-poor stream. In forthcoming work, we will apply this approach to many more streams in the DESI footprint, enabling population-level comparisons with predictions from simulations.
KW - astro-ph.GA
U2 - 10.3847/1538-4357/ae7440
DO - 10.3847/1538-4357/ae7440
M3 - Article
SN - 0004-637X
VL - 1005
JO - The Astrophysical Journal
JF - The Astrophysical Journal
IS - 2
M1 - 200
ER -