Digging into the Interior of Hot Cores with ALMA (DIHCA). VII. Disk candidates around high-mass stars and evidence of anisotropic infall

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Main Authors: Olguin, Fernando A., Sanhueza, Patricio, Oya, Yoko, Ginsburg, Adam, Beltrán, Maria T., Morii, Kaho, Galván-Madrid, Roberto, Chen, Huei-Ru Vivien, Luo, Qiuyi, Tanaka, Kei E. I., Zhang, Suinan, Cheng, Yu, Nakamura, Fumitaka, Li, Shanghuo, Taniguchi, Kotomi, Garay, Guido, Zhang, Qizhou, Saito, Masao, Sakai, Takeshi, Lu, Xing, Weng, Jixiang, Guzmán, Andrés E.
Format: Preprint
Published: 2026
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author Olguin, Fernando A.
Sanhueza, Patricio
Oya, Yoko
Ginsburg, Adam
Beltrán, Maria T.
Morii, Kaho
Galván-Madrid, Roberto
Chen, Huei-Ru Vivien
Luo, Qiuyi
Tanaka, Kei E. I.
Zhang, Suinan
Cheng, Yu
Nakamura, Fumitaka
Li, Shanghuo
Taniguchi, Kotomi
Garay, Guido
Zhang, Qizhou
Saito, Masao
Sakai, Takeshi
Lu, Xing
Weng, Jixiang
Guzmán, Andrés E.
author_facet Olguin, Fernando A.
Sanhueza, Patricio
Oya, Yoko
Ginsburg, Adam
Beltrán, Maria T.
Morii, Kaho
Galván-Madrid, Roberto
Chen, Huei-Ru Vivien
Luo, Qiuyi
Tanaka, Kei E. I.
Zhang, Suinan
Cheng, Yu
Nakamura, Fumitaka
Li, Shanghuo
Taniguchi, Kotomi
Garay, Guido
Zhang, Qizhou
Saito, Masao
Sakai, Takeshi
Lu, Xing
Weng, Jixiang
Guzmán, Andrés E.
contents We study the kinematics of condensations in 30 fields forming high-mass stars with ALMA at a high-resolution of ~0.08'' on average (~230 au). The presence of disks is important for feeding high-mass stars without feedback halting growth as their masses increase. In the search for velocity gradients resembling rotation that can reveal the presence of disks, we analyze the emission of gas tracers in 49 objects using CH$_3$OH, CH$_3$CN, and tentative detections of HNCO and cis-HCOOH. Most of the velocity distributions show velocity gradients indicative of rotation. We reveal a total of 32 disk candidates, the largest sample to date that has been uniformly analyzed at a few hundred au scales in the high-mass regime. Their position-velocity maps are generally asymmetric with one side brighter than the opposite. We successfully fit a power law to the position-velocity maps of the disk candidates and find indices between -0.5 (Keplerian rotation) and -1 (rotation under specific angular momentum conservation) with a median of -0.7. Under Keplerian rotation assumption, we estimate central masses, uncorrected for inclination, ranging between 7 to 45 M$_\odot$. Excluding outliers, the disk candidates are relatively more compact (<200 au) and less massive (<5 M$_\odot$) than previous results at coarser angular resolution. We calculate an average Toomre-$Q$ parameter and find that most are gravitationally unstable (median of 0.5). We conclude that these observations offer the first opportunity to separate the disk and envelope components of hot cores on a statistically significant sample, and confirm that anisotropic collapse plays an role in feeding high-mass (proto)stars.
format Preprint
id arxiv_https___arxiv_org_abs_2601_15371
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Digging into the Interior of Hot Cores with ALMA (DIHCA). VII. Disk candidates around high-mass stars and evidence of anisotropic infall
Olguin, Fernando A.
Sanhueza, Patricio
Oya, Yoko
Ginsburg, Adam
Beltrán, Maria T.
Morii, Kaho
Galván-Madrid, Roberto
Chen, Huei-Ru Vivien
Luo, Qiuyi
Tanaka, Kei E. I.
Zhang, Suinan
Cheng, Yu
Nakamura, Fumitaka
Li, Shanghuo
Taniguchi, Kotomi
Garay, Guido
Zhang, Qizhou
Saito, Masao
Sakai, Takeshi
Lu, Xing
Weng, Jixiang
Guzmán, Andrés E.
Solar and Stellar Astrophysics
Astrophysics of Galaxies
We study the kinematics of condensations in 30 fields forming high-mass stars with ALMA at a high-resolution of ~0.08'' on average (~230 au). The presence of disks is important for feeding high-mass stars without feedback halting growth as their masses increase. In the search for velocity gradients resembling rotation that can reveal the presence of disks, we analyze the emission of gas tracers in 49 objects using CH$_3$OH, CH$_3$CN, and tentative detections of HNCO and cis-HCOOH. Most of the velocity distributions show velocity gradients indicative of rotation. We reveal a total of 32 disk candidates, the largest sample to date that has been uniformly analyzed at a few hundred au scales in the high-mass regime. Their position-velocity maps are generally asymmetric with one side brighter than the opposite. We successfully fit a power law to the position-velocity maps of the disk candidates and find indices between -0.5 (Keplerian rotation) and -1 (rotation under specific angular momentum conservation) with a median of -0.7. Under Keplerian rotation assumption, we estimate central masses, uncorrected for inclination, ranging between 7 to 45 M$_\odot$. Excluding outliers, the disk candidates are relatively more compact (<200 au) and less massive (<5 M$_\odot$) than previous results at coarser angular resolution. We calculate an average Toomre-$Q$ parameter and find that most are gravitationally unstable (median of 0.5). We conclude that these observations offer the first opportunity to separate the disk and envelope components of hot cores on a statistically significant sample, and confirm that anisotropic collapse plays an role in feeding high-mass (proto)stars.
title Digging into the Interior of Hot Cores with ALMA (DIHCA). VII. Disk candidates around high-mass stars and evidence of anisotropic infall
topic Solar and Stellar Astrophysics
Astrophysics of Galaxies
url https://arxiv.org/abs/2601.15371