Expanding stellar horizons with polarized light

Fuente: arXiv
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Autori principali: Vandersnickt, J., Armenta, R. Ochoa, Vanlaer, V., David-Uraz, A., Aerts, C., Das, S. B., Bouret, J. -C., Bowman, D. M., Bugnet, L., Khalack, V., Labadie-Bartz, J., Mathis, S., Nazé, Y., Neiner, C., Petit, P., Petit, V., Thomson-Paressant, K., Van Doorsselaere, T., Vanrespaille, M.
Natura: Preprint
Pubblicazione: 2025
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author Vandersnickt, J.
Armenta, R. Ochoa
Vanlaer, V.
David-Uraz, A.
Aerts, C.
Das, S. B.
Bouret, J. -C.
Bowman, D. M.
Bugnet, L.
Khalack, V.
Labadie-Bartz, J.
Mathis, S.
Nazé, Y.
Neiner, C.
Petit, P.
Petit, V.
Thomson-Paressant, K.
Van Doorsselaere, T.
Vanrespaille, M.
author_facet Vandersnickt, J.
Armenta, R. Ochoa
Vanlaer, V.
David-Uraz, A.
Aerts, C.
Das, S. B.
Bouret, J. -C.
Bowman, D. M.
Bugnet, L.
Khalack, V.
Labadie-Bartz, J.
Mathis, S.
Nazé, Y.
Neiner, C.
Petit, P.
Petit, V.
Thomson-Paressant, K.
Van Doorsselaere, T.
Vanrespaille, M.
contents The polarization of light is a critically under-utilized, rich source of information in astronomy. For stars in particular, surface magnetism polarization that can be detected and measured with spectro-polarimetry. Many questions about these surface fields remain unanswered due to a lack of dedicated instruments capable of probing weak and strong surface magnetic fields for the entire mass range of stars, from M-dwarfs (and even substellar objects) to massive O-type stars at different evolutionary stages and metallicities. These questions range from the origin of these fields to their true incidence rate throughout the stellar population and the dependence on metallicity. Magnetic fields, although currently often excluded from stellar evolution models, play an important role in stellar evolution. Connecting the surface fields to internal fields through asteroseismology will instigate a new era of understanding stellar evolution and the transport of angular momentum and chemical elements throughout stellar interiors, also impacting our understanding of star-planet interactions and stellar remnants. Polarimetry is also an under-utilized tool to observationally constrain the mode identification of nonradial oscillations, which lies at the basis of accurate asteroseismic parameter estimation at percentage-level for stellar radii, masses, ages, internal rotation, and magnetic field strengths. Combining strong constraints on mode identification and surface magnetic properties through the acquisition of time-resolved, high-resolution and high-signal-to-noise (S/N) spectro-polarimetry and spectroscopy promises to bring leaps forward in our understanding of stellar structure, particularly when combined with long-term space photometric data from past, current, and future missions.
format Preprint
id arxiv_https___arxiv_org_abs_2512_15170
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Expanding stellar horizons with polarized light
Vandersnickt, J.
Armenta, R. Ochoa
Vanlaer, V.
David-Uraz, A.
Aerts, C.
Das, S. B.
Bouret, J. -C.
Bowman, D. M.
Bugnet, L.
Khalack, V.
Labadie-Bartz, J.
Mathis, S.
Nazé, Y.
Neiner, C.
Petit, P.
Petit, V.
Thomson-Paressant, K.
Van Doorsselaere, T.
Vanrespaille, M.
Instrumentation and Methods for Astrophysics
Solar and Stellar Astrophysics
The polarization of light is a critically under-utilized, rich source of information in astronomy. For stars in particular, surface magnetism polarization that can be detected and measured with spectro-polarimetry. Many questions about these surface fields remain unanswered due to a lack of dedicated instruments capable of probing weak and strong surface magnetic fields for the entire mass range of stars, from M-dwarfs (and even substellar objects) to massive O-type stars at different evolutionary stages and metallicities. These questions range from the origin of these fields to their true incidence rate throughout the stellar population and the dependence on metallicity. Magnetic fields, although currently often excluded from stellar evolution models, play an important role in stellar evolution. Connecting the surface fields to internal fields through asteroseismology will instigate a new era of understanding stellar evolution and the transport of angular momentum and chemical elements throughout stellar interiors, also impacting our understanding of star-planet interactions and stellar remnants. Polarimetry is also an under-utilized tool to observationally constrain the mode identification of nonradial oscillations, which lies at the basis of accurate asteroseismic parameter estimation at percentage-level for stellar radii, masses, ages, internal rotation, and magnetic field strengths. Combining strong constraints on mode identification and surface magnetic properties through the acquisition of time-resolved, high-resolution and high-signal-to-noise (S/N) spectro-polarimetry and spectroscopy promises to bring leaps forward in our understanding of stellar structure, particularly when combined with long-term space photometric data from past, current, and future missions.
title Expanding stellar horizons with polarized light
topic Instrumentation and Methods for Astrophysics
Solar and Stellar Astrophysics
url https://arxiv.org/abs/2512.15170