ALMASOP. Detection of Turbulence-induced Mass Assembly Shocks in Starless Cores

Fuente: arXiv
Guardado en:
Detalles Bibliográficos
Autores principales: Hsu, Shih-Ying, Liu, Sheng-Yuan, Liu, Xunchuan, Li, Pak Shing, Liu, Tie, Sahu, Dipen, Tatematsu, Kenichi, Li, Shanghuo, Hirano, Naomi, Lee, Chin-Fei, Lin, Sheng-Jun
Formato: Preprint
Publicado: 2025
Materias:
Acceso en línea:
Etiquetas: Agregar Etiqueta
Sin Etiquetas, Sea el primero en etiquetar este registro!
_version_ 1866916693058519040
author Hsu, Shih-Ying
Liu, Sheng-Yuan
Liu, Xunchuan
Li, Pak Shing
Liu, Tie
Sahu, Dipen
Tatematsu, Kenichi
Li, Shanghuo
Hirano, Naomi
Lee, Chin-Fei
Lin, Sheng-Jun
author_facet Hsu, Shih-Ying
Liu, Sheng-Yuan
Liu, Xunchuan
Li, Pak Shing
Liu, Tie
Sahu, Dipen
Tatematsu, Kenichi
Li, Shanghuo
Hirano, Naomi
Lee, Chin-Fei
Lin, Sheng-Jun
contents Star formation is a series of mass assembly processes and starless cores, those cold and dense condensations in molecular clouds, play a pivotal role as initial seeds of stars. With only a limited sample of known starless cores, however, the origin and growth of such stellar precursors had not been well characterized previously. Meanwhile, the recent discovery of CH$_3$OH emission, which is generally associated with desorbed icy mantle in warm regions, particularly at the periphery of starless cores also remains puzzling. We present sensitive ALMA (Band~3) observations (at 3~mm) toward a sample of newly identified starless cores in the Orion Molecular Cloud. The spatially resolved images distinctly indicate that the observed CH$_3$OH and N$_2$H$^+$ emission associated with these cores are morphologically anti-correlated and kinematically offset from each other. We postulate that the CH$_3$OH emission highlights the desorption of icy mantle by shocks resulting from gas piling onto dense cores in the filaments traced by N$_2$H$^+$. Our magnetohydrodynamic (MHD) simulations of star formation in turbulent clouds combined with radiative transfer calculations and imaging simulations successfully reproduced the observed signatures and reaffirmed the above scenario at work. Our result serves as an intriguing and exemplary illustration, a snapshot in time, of the dynamic star-forming processes in turbulent clouds. The results offer compelling insights into the mechanisms governing the growth of starless cores and the presence of gas-phase complex organic molecules associated with these cores.
format Preprint
id arxiv_https___arxiv_org_abs_2504_11776
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle ALMASOP. Detection of Turbulence-induced Mass Assembly Shocks in Starless Cores
Hsu, Shih-Ying
Liu, Sheng-Yuan
Liu, Xunchuan
Li, Pak Shing
Liu, Tie
Sahu, Dipen
Tatematsu, Kenichi
Li, Shanghuo
Hirano, Naomi
Lee, Chin-Fei
Lin, Sheng-Jun
Solar and Stellar Astrophysics
Astrophysics of Galaxies
Star formation is a series of mass assembly processes and starless cores, those cold and dense condensations in molecular clouds, play a pivotal role as initial seeds of stars. With only a limited sample of known starless cores, however, the origin and growth of such stellar precursors had not been well characterized previously. Meanwhile, the recent discovery of CH$_3$OH emission, which is generally associated with desorbed icy mantle in warm regions, particularly at the periphery of starless cores also remains puzzling. We present sensitive ALMA (Band~3) observations (at 3~mm) toward a sample of newly identified starless cores in the Orion Molecular Cloud. The spatially resolved images distinctly indicate that the observed CH$_3$OH and N$_2$H$^+$ emission associated with these cores are morphologically anti-correlated and kinematically offset from each other. We postulate that the CH$_3$OH emission highlights the desorption of icy mantle by shocks resulting from gas piling onto dense cores in the filaments traced by N$_2$H$^+$. Our magnetohydrodynamic (MHD) simulations of star formation in turbulent clouds combined with radiative transfer calculations and imaging simulations successfully reproduced the observed signatures and reaffirmed the above scenario at work. Our result serves as an intriguing and exemplary illustration, a snapshot in time, of the dynamic star-forming processes in turbulent clouds. The results offer compelling insights into the mechanisms governing the growth of starless cores and the presence of gas-phase complex organic molecules associated with these cores.
title ALMASOP. Detection of Turbulence-induced Mass Assembly Shocks in Starless Cores
topic Solar and Stellar Astrophysics
Astrophysics of Galaxies
url https://arxiv.org/abs/2504.11776