A multi-frequency, multi-epoch radio continuum study of the Arches cluster with the VLA

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Main Authors: Cano-González, M., Schödel, R., Alberdi, A., Moldón, J., Pérez-Torres, M. A., Najarro, F., Gallego-Calvente, A. T.
Format: Preprint
Published: 2024
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author Cano-González, M.
Schödel, R.
Alberdi, A.
Moldón, J.
Pérez-Torres, M. A.
Najarro, F.
Gallego-Calvente, A. T.
author_facet Cano-González, M.
Schödel, R.
Alberdi, A.
Moldón, J.
Pérez-Torres, M. A.
Najarro, F.
Gallego-Calvente, A. T.
contents The Arches cluster, one of the most massive clusters in the Milky Way, is located about 30 pc in projection from the central massive black hole. With its high mass, young age, and location in the Galaxy's most extreme star forming environment, the Arches is an extraordinary laboratory to study massive stars and clusters. Our objective is to improve our knowledge of the properties of massive stars and the Arches cluster through high angular resolution radio continuum studies. We observed the Arches cluster with the Karl G. Jansky Very Large Array in the C- and X-bands throughout 2016, 2018, and 2022. We used the A-configuration to achieve the highest possible angular resolution and cross-matched the detected point sources with stars detected in the infrared, using proper motion catalogues to ensure cluster membership. We report the most extensive radio point source catalogue of the cluster to date, with a total of 25 radio detections. We also created the deepest radio images of the cluster so far. Most of our stellar radio sources (12/18) show a positive spectral index, indicating that the dominant emission process is free-free thermal radiation, which probably originates from stellar winds. We found that radio variability is more frequent than what was inferred from previous observations, affecting up to 60% of the sources associated with bright stellar counterparts. We propose four of our detections (F6, F18, F19 and F26) as primary candidates for colliding-wind binaries based on their consistent flat-to-negative spectral index. We classify F7, F9, F12, F14, and F55 as secondary colliding wind binary candidates based on their high flux and/or spectral index variability, and X-ray counterparts. Thus, we infer a 61% multiplicity fraction for the Arches cluster radio-stars when combining our findings with recent infrared radial velocity studies.
format Preprint
id arxiv_https___arxiv_org_abs_2410_17806
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle A multi-frequency, multi-epoch radio continuum study of the Arches cluster with the VLA
Cano-González, M.
Schödel, R.
Alberdi, A.
Moldón, J.
Pérez-Torres, M. A.
Najarro, F.
Gallego-Calvente, A. T.
Astrophysics of Galaxies
The Arches cluster, one of the most massive clusters in the Milky Way, is located about 30 pc in projection from the central massive black hole. With its high mass, young age, and location in the Galaxy's most extreme star forming environment, the Arches is an extraordinary laboratory to study massive stars and clusters. Our objective is to improve our knowledge of the properties of massive stars and the Arches cluster through high angular resolution radio continuum studies. We observed the Arches cluster with the Karl G. Jansky Very Large Array in the C- and X-bands throughout 2016, 2018, and 2022. We used the A-configuration to achieve the highest possible angular resolution and cross-matched the detected point sources with stars detected in the infrared, using proper motion catalogues to ensure cluster membership. We report the most extensive radio point source catalogue of the cluster to date, with a total of 25 radio detections. We also created the deepest radio images of the cluster so far. Most of our stellar radio sources (12/18) show a positive spectral index, indicating that the dominant emission process is free-free thermal radiation, which probably originates from stellar winds. We found that radio variability is more frequent than what was inferred from previous observations, affecting up to 60% of the sources associated with bright stellar counterparts. We propose four of our detections (F6, F18, F19 and F26) as primary candidates for colliding-wind binaries based on their consistent flat-to-negative spectral index. We classify F7, F9, F12, F14, and F55 as secondary colliding wind binary candidates based on their high flux and/or spectral index variability, and X-ray counterparts. Thus, we infer a 61% multiplicity fraction for the Arches cluster radio-stars when combining our findings with recent infrared radial velocity studies.
title A multi-frequency, multi-epoch radio continuum study of the Arches cluster with the VLA
topic Astrophysics of Galaxies
url https://arxiv.org/abs/2410.17806