English

Probing Interstellar Grain Growth Through Polarimetry in the Taurus Cloud Complex

Astrophysics of Galaxies 2021-01-06 v1

Abstract

The optical and near-infrared (OIR) polarization of starlight is typically understood to arise from the dichroic extinction of that light by dust grains whose axes are aligned with respect to a local magnetic-field. The size distribution of the aligned-grain population can be constrained by measurements of the wavelength dependence of the polarization. The leading physical model for producing the alignment is radiative alignment-torques (RAT), which predicts that the most efficiently aligned grains are those with sizes larger than the wavelengths of light composing the local radiation field. Therefore, for a given grain-size distribution, the wavelength at which the polarization reaches a maximum (λmax\lambda_\mathrm{max}) should correlate with the characteristic reddening along the line of sight between the dust grains and the illumination source. A correlation between λmax\lambda_\mathrm{max} and reddening has been previously established for extinctions up to AV4A_V\approx4 mag. We extend the study of this relationship to a larger sample of stars in the Taurus cloud complex, including extinctions AV>10A_V>10 mag. We confirm the earlier results for AV<4A_V<4 mag, but find that the λmax\lambda_\mathrm{max} vs. AVA_V relationship bifurcates above AV4A_V\approx4 mag, with part of the sample continuing the previously observed relationship and the remaining part exhibiting a significantly steeper rise. We propose that the data exhibiting the steep rise represent lines-of-sight towards high density "clumps," where grain coagulation has taken place. We present RAT-based modeling supporting these hypotheses. These results indicate that multi-band OIR polarimetry is a powerful tool for tracing grain growth in molecular clouds, independent of uncertainties in the dust temperature and emissivity.

Keywords

Cite

@article{arxiv.2011.00114,
  title  = {Probing Interstellar Grain Growth Through Polarimetry in the Taurus Cloud Complex},
  author = {John E. Vaillancourt and B-G Andersson and Dan P. Clemens and Vilppu Piirola and Thiem Hoang and Eric E. Becklin and Miranda Caputo},
  journal= {arXiv preprint arXiv:2011.00114},
  year   = {2021}
}

Comments

25 pages, 7 figures, to be published in ApJ

R2 v1 2026-06-23T19:47:50.352Z