Magneto-Archeology of White Dwarfs. Revisiting the fossil field scenario with observational constraints during the red giant branch
arXiv:2601.15203 · doi:10.1051/0004-6361/202659069
Abstract
The detection of strong, large-scale magnetic fields at the surface of only the oldest population of white dwarfs might point towards a hidden internal magnetic field slowly rising to the surface. In addition, strong magnetic fields have recently been measured through asteroseismology in the radiative interiors of red giant stars, the progenitors of white dwarfs. To investigate the potential connection between these observations, we revisit the fossil field framework by using the asteroseismic detections to constrain the strength of such magnetic fields as they evolve to the white dwarf stage. We assume that the magnetic field was either created during the main sequence core convection or that it fills the radiative interior as the star evolves on the red giant branch. From these, we evolve the magnetic flux, allowing for magnetic diffusion along the evolution of a 1.5Msun modelled star. We find that measured field strengths in red giants attributed to the hydrogen-burning shell are compatible with the field amplitudes and emergence timescales of magnetized white dwarfs. On the contrary, magnetic fields generated solely from a convective-core dynamo on the main-sequence and detectable during the red giant branch would be buried too deep in the star and not match the breakout timescales and the field strengths of magnetic white dwarfs. A broadly magnetized internal radiative zone during the red giant branch is therefore key for the fossil field theory to connect magnetic fields observed along the late evolution of stars.
accepted in A&A Letters, 4 pages (5 pages of appendix), 9 figures
References in corpus (29)
- Modules for Experiments in Stellar Astrophysics (MESA): Time-Dependent Convection, Energy Conservation, Automatic Differentiation, and Infrastructure
- Slowing the Spins of Stellar Cores
- On non-axisymmetric magnetic equilibria in stars
- Magnetic fields in isolated and interacting white dwarfs
- The Magnetic Fields at the Surface of Active Single G-K Giants
- A common origin of magnetism from planets to white dwarfs
- 30 to 100-kG magnetic fields in the cores of red giant stars
- Modeling of Magneto-Rotational Stellar Evolution I. Method and first applications
- Multiple channels for the onset of magnetism in isolated white dwarfs
- Strong magnetic fields detected in the cores of 11 red giant stars using gravity-mode period spacings
- Magnetic signatures on mixed-mode frequencies. I. An axisymmetric fossil field inside the core of red giants
- Spectrophotometric analysis of magnetic white dwarf I: Hydrogen-rich compositions
- Asteroseismic Signatures of Core Magnetism and Rotation in Hundreds of Low-Luminosity Red Giants
- Magnetic Helicity and the Relaxation of Fossil Fields
- Asymmetries of frequency splittings of dipolar mixed modes: a window on the topology of deep magnetic fields
- A Short Intense Dynamo at the Onset of Crystallization in White Dwarfs
- Main sequence dynamo magnetic fields emerging in the white dwarf phase
- Magnetic field evolution for crystallization-driven dynamos in C/O white dwarfs
- Fast and Slow Crystallization-driven Convection in White Dwarfs
- Unveiling complex magnetic field configurations in red giant stars
- Sensitivity kernels for inferring Lorentz stresses from normal-mode frequency splittings in the Sun
- The Stability of Prendergast Magnetic Fields
- Magnetohydrodynamic simulations of A-type stars: Long-term evolution of core dynamo cycles
- Detectability of axisymmetric magnetic fields from the core to the surface of oscillating post-main sequence stars
- Asteroseismic detection of a predominantly toroidal magnetic field in the deep interior of the main-sequence F star KIC 9244992
- On the Geometry of the Near-Core Magnetic Field in Massive Stars
- Shaping core dynamos in A-type stars: The role of dipolar fossil fields
- Seismology and diffusion of ultramassive white dwarf magnetic fields
- Evolution of a Long-Lived Deep-Seated Main-Sequence Magnetic Field During White Dwarf Cooling