Papers
Topics
Authors
Recent
Search
2000 character limit reached

Magnetic Fields in Massive Star-forming Regions (MagMaR). XII. Radiative Torque Alignment and Disruption in NGC6334I

Published 3 Sep 2026 in astro-ph.GA | (2609.03458v1)

Abstract: Intense radiation from high-mass stars is expected to significantly affect dust grain alignment and evolution through RAdiative Torques (RATs). We investigate this effect in a massive star-forming region, NGC6334I, using 1.2 mm dust continuum polarization observations from the Atacama Large Millimeter/submillimeter Array. The polarization fraction spans from 1%\lesssim1\% to 10%\sim10\% and decreases with increasing column density, remaining below 2%2\% in dense cores despite high temperatures (100\sim100 K), where efficient grain alignment by RATs is expected. We investigate how grain alignment, grain growth, grain disruption, B-field tangling, and local physical conditions affect the polarization properties of MM1, MM2, MM3, and their surroundings. Polarization angle dispersion shows that B-field tangling contributes to depolarization at moderate densities but cannot fully explain the lowest polarization fractions. Using RAT-based grain alignment and polarization modeling, we find that reduced alignment efficiency and high optical depth reproduce the low polarization in the densest regions. MM2 shows evidence of grain growth, with maximum grain sizes amax0.351.0 μa_{\max}\sim0.35-1.0~μm, while MM1 exhibits smaller values of 0.350.50 μ\sim0.35-0.50~μm. Accounting for optical depth increases the inferred grain sizes in MM1 to 1.02.0 μ\sim1.0-2.0~μm. Analytical estimates of radiative torque disruption from the intense outburst suggest that micron-sized grains in high-temperature, moderate-density regions can fragment into submicron grains. Alternatively, high optical depth may also explain the low polarization in the densest regions even in the presence of micron-sized grains. Incorporating the B-field inclination effect indicates a transition from predominantly plane-of-sky fields at low densities to more line-of-sight-aligned configurations at high densities.

Summary

No one has generated a summary of this paper yet.

Paper to Video (Beta)

No one has generated a video about this paper yet.

Whiteboard

No one has generated a whiteboard explanation for this paper yet.

Continue Learning

We haven't generated follow-up questions for this paper yet.