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B-fields and dust in interstellar filaments using dust polarization (BALLAD-POL). VI. grain alignment mechanisms in the massive quiescent filament G16.96+0.27 using dust polarization observations from JCMT/POL-2

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dc.contributor.author Pravash, Saikhom
dc.contributor.author Hoang, Thiem
dc.contributor.author Archana Soam
dc.contributor.author Gu, Qi-Lao
dc.contributor.author Liu, Tie
dc.contributor.author Diep, Pham Ngoc
dc.contributor.author Tram, Le Ngoc
dc.contributor.author Ngoc, Nguyen Bich
dc.date.accessioned 2026-06-17T05:13:03Z
dc.date.available 2026-06-17T05:13:03Z
dc.date.issued 2026-04
dc.identifier.citation The Astrophysical Journal Supplement Series, Vol. 283, No. 2, 65 en_US
dc.identifier.issn 1538-4365
dc.identifier.uri http://hdl.handle.net/2248/8961
dc.description Open Access en_US
dc.description 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.
dc.description.abstract Dust polarization induced by aligned nonspherical grains acts as an important tool to trace the magnetic field (B-field) morphologies and strengths in molecular clouds and constrain grain properties and their alignment mechanisms. The widely accepted grain alignment theory is the alignment induced by radiative torques (RATs). In this work, we investigate grain alignment mechanisms in a massive, quiescent and filamentary infrared dark cloud G16.96+0.27 using thermal dust polarization observation with JCMT/POL-2 at 850 μm. We observe the so-called phenomenon of a polarization hole attributed to the decrease in polarization fraction in denser regions of higher total intensity and gas density. Our study finds that the B-field tangling effect is a minor cause of the polarization hole, and the dominant factor is the reduction in grain alignment efficiency in denser regions, consistent with the RAT mechanism. To test RAT theory, we calculate various quantities describing grain alignment, including the minimum size of aligned grains, magnetic and magnetic relaxation parameters, and show that the RAT mechanism can explain observational data. Our study also reveals evidence for a magnetically enhanced RAT (M-RAT) mechanism required to explain the observed high polarization fractions of above 10% in the outer regions of the filament. Finally, we perform detailed modeling of thermal dust polarization using DUSTPOL_PY based on M-RAT theory and find that the modeling could successfully reproduce the observational data when the maximum grain size is around 0.45 μm accompanied by an increase in grain axial ratio, along with the consideration of variations in the magnetic field’s inclination angle with the line of sight en_US
dc.language.iso en en_US
dc.publisher American Astronomical Society en_US
dc.relation.uri https://doi.org/10.3847/1538-4365/ae496f
dc.rights © 2026. The Author(s)
dc.subject Interstellar dust en_US
dc.subject Interstellar filaments en_US
dc.subject Star forming regions en_US
dc.subject Interstellar magnetic fields en_US
dc.title B-fields and dust in interstellar filaments using dust polarization (BALLAD-POL). VI. grain alignment mechanisms in the massive quiescent filament G16.96+0.27 using dust polarization observations from JCMT/POL-2 en_US
dc.type Article en_US


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