Internal and external alignment of carbonaceous grains within the radiative torque paradigm
Thiem Hoang, Vo Hong Minh Phan, and Le Ngoc Tram

TL;DR
This paper investigates how carbonaceous grains, like graphite and HAC, align internally and externally in the interstellar medium under the radiative torque paradigm, revealing complex dependencies on grain properties and environmental conditions.
Contribution
It provides a detailed analysis of the internal and external alignment mechanisms of carbonaceous grains, including nuclear and inelastic relaxation effects, within the RAT framework.
Findings
HAC grains can have efficient nuclear relaxation due to hydrogen protons.
Both HAC and graphite grains can align with radiation at low-J attractors.
Alignment with magnetic fields is suppressed for HAC due to slow Larmor precession.
Abstract
We study the internal and external alignment of carbonaceous grains, including graphite and hydrogenated amorphous carbon (HAC), in the interstellar medium (ISM) within the RAdiative Torque (RAT) paradigm. For internal alignment (IA), we find that HAC grains having nuclear paramagnetism due to hydrogen protons can have efficient nuclear relaxation, whereas both HAC and graphite grains can have efficient inelastic relaxation for grains aligned both at low and high attractors. For external alignment, HAC and graphite grains can align with the radiation direction (-RAT) at low attractors but cannot have stable alignment at high attractors due to the suppression of radiative precession. HAC also has slow Larmor precession compared to the randomization by gas collisions and cannot be aligned with the magnetic field (-RAT). Small HAC grains of m drifting…
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Taxonomy
TopicsAstrophysics and Star Formation Studies · Astro and Planetary Science · Stellar, planetary, and galactic studies
