Magnetic fields and accretion flows on the classical T Tauri star V2129 Oph
JF Donati, MM Jardine, SG Gregory, P Petit, J Bouvier, C Dougados, F, Menard, AC Cameron, TJ Harries, SV Jeffers, F Paletou

TL;DR
This study reveals the complex magnetic topology of the classical T Tauri star V2129 Oph, showing how its magnetic field influences accretion processes and stellar rotation, with implications for star-disc interactions.
Contribution
First detailed magnetic field mapping of V2129 Oph, demonstrating a complex, multipolar topology and its role in accretion and stellar rotation regulation.
Findings
Magnetic field is complex with dominant octupolar component.
Magnetosphere extends to about 7 stellar radii.
Magnetic coupling influences slow stellar rotation.
Abstract
From observations collected with the ESPaDOnS spectropolarimeter, we report the discovery of magnetic fields at the surface of the mildly accreting classical T Tauri star V2129 Oph. Zeeman signatures are detected, both in photospheric lines and in the emission lines formed at the base of the accretion funnels linking the disc to the protostar, and monitored over the whole rotation cycle of V2129 Oph. We observe that rotational modulation dominates the temporal variations of both unpolarized and circularly polarized line profiles. We reconstruct the large-scale magnetic topology at the surface of V2129 Oph from both sets of Zeeman signatures simultaneously. We find it to be rather complex, with a dominant octupolar component and a weak dipole of strengths 1.2 and 0.35 kG, respectively, both slightly tilted with respect to the rotation axis. The large-scale field is anchored in a pair of…
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