Polarization properties of methanol masers
Daria Dall'Olio (1), Wouter Vlemmings (1), Boy Lankhaar (1) and, Gabriele Surcis (2) ((1) Department of Space, Earth, Environment, Chalmers, University of Technology, Onsala Space Observatory, Onsala, Sweden, (2), INAF-Osservatorio Astronomico di Cagliari, Italy)

TL;DR
This study investigates the polarization properties of methanol masers in star-forming regions, highlighting the influence of hyperfine transitions and pumping mechanisms on polarization, and emphasizing the importance of brightness temperature estimates.
Contribution
The paper introduces new models incorporating hyperfine components and Landé g-factors to better understand methanol maser polarization characteristics.
Findings
Polarization depends on hyperfine transition and pumping conditions.
Preferred hyperfine pumping explains high polarization levels.
Non-Zeeman effects are negligible at typical brightness temperatures.
Abstract
(Abridged) Astronomical masers have been effective tools to study magnetic fields for many years. In particular, methanol can be used to probe different parts of protostars such as accretion discs and outflows, since it produces one of the strongest and the most commonly observed masers in massive star-forming regions. We investigate the polarization properties of selected methanol maser transitions in light of newly calculated methanol Land\'e g-factors and considering hyperfine components. We compare our results with previous observations and we evaluate the effect of preferred hyperfine pumping and non-Zeeman effects. We run simulations using the radiative transfer code CHAMP. We find a dependence of linear and circular polarization fractions on the hyperfine transitions. Preferred hyperfine pumping can explain some high levels of linear and circular polarization and some of the…
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