On Internal and External Alignment of Dust Grains in Protostellar Environments
Thiem Hoang, Le Ngoc Tram, Vo Hong Minh Phan, Nguyen Chau Giang,, Nguyen Thi Phuong, Nguyen Duc Dieu

TL;DR
This paper investigates the physical mechanisms behind the alignment of large dust grains in protostellar environments, focusing on internal and external alignment processes driven by radiative and mechanical torques.
Contribution
It provides analytical formulas for grain alignment critical sizes and assesses the roles of different relaxation processes and torques in various protostellar regions.
Findings
Super-Barnett relaxation induces efficient internal alignment for iron-rich VLGs.
VLGs with iron inclusions can be magnetically aligned, enabling magnetic field tracing.
Mechanical torques may dominate over radiative torques in protostellar disks.
Abstract
We study the physical processes inducing the alignment of the grain axis of maximum inertia moment with the angular momentum (, i.e., internal alignment) and of with the magnetic field (i.e., external alignment) of very large grains (VLGs, of radius m) using the grain alignment framework based on radiative torques (RATs) and mechanical torques (METs). We derive analytical formulae for critical sizes of grain alignment, assuming that grains are aligned at both low and high attractors by RATs (METs). For protostellar cores, we find that super-Barnett relaxation can induce efficient internal alignment for VLGs with large iron inclusions aligned at high attractors by RATs (METs). In contrast, inelastic relaxation can be efficient for VLGs made of any composition. For external alignment, we find that VLGs with iron inclusions aligned at high…
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