Please use this identifier to cite or link to this item: http://hdl.handle.net/2248/9038
Title: Evolution of starless cores in massive clumps seen by the ALMA ASHES and QUARKS surveys
Authors: Yang, Dongting
Liu, Hong-Li
Qin, Sheng-Li
Liu, Tie
Jiao, Wenyu
Garay, Guido
Sanhueza, Patricio
Xu, Feng-Wei
Zhu, Lei
Dib, S
Tang, Xindi
Stutz, Amelia
Mai, Xiaofeng
Zhang, Siju
Yang, A. Y
Tej, Anandmayee
Li, Shanghuo
Liu, Xunchuan
Garcia, Pablo
Juvela, Mika
Chibueze, J. O
Gorai, Prasanta
Kim, Kee-Tae
Lee, Chang Won
Baug, Tapas
Das, Swagat
Gupta, Shivani
Hwang, Jihye
Bronfman, Leonardo
Archana Soam
Dewangan, Lokesh
Keywords: Interstellar medium
Dust continuum emission
Submillimeter astronomy
Molecular clouds
Star forming regions
Massive stars
Issue Date: 1-Aug-2026
Publisher: American Astronomical Society
Citation: The Astrophysical Journal, Vol. 1006, No. 2, 231
Abstract: We present a systematic comparative analysis of 324 starless cores in early-phase infrared-dark clouds (IRDCs; ASHES survey) and evolved-phase infrared-bright clouds (IRBCs; QUARKS survey) using 1.3 mm continuum and line data by the Atacama Large Millimeter/submillimeter Array. Despite having comparable sizes (∼2500 au), starless cores in IRBCs exhibit systematically higher median mass (1.5 M⊙ versus 0.6 M⊙), number density, and surface density—enhancements of approximately a factor of 2 relative to starless cores in IRDCs. Starless cores in IRBCs also display relatively stronger nonthermal motions (σ ∼ 0.5 km s−1 versus 0.3 km s−1), higher total virial parameters (median αvir,tot ∼ 2.3 versus 1.0), and steeper density profiles, indicating more centrally concentrated structures in feedback-driven, turbulence-enhanced environments. These findings support a dual evolutionary origin: (i) new core formation in evolved IRBCs under altered initial conditions and (ii) subsequent dynamical mass growth via accretion from extended reservoirs. The prevalence of low-mass starless cores—even in late-stage IRBC environments—challenges models requiring massive prestellar cores and instead favors competitive-like dynamical mass accretion scenarios for high-mass star formation.
Description: Open Access
Original content from this work may be used under the terms of the Creative Commons Attribution 4.0 licence. Any further distribution of this work must maintain attribution to the author(s) and the title of the work, journal citation and DOI.
URI: http://hdl.handle.net/2248/9038
ISSN: 1538-4357
Appears in Collections:IIAP Publications

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