Spectral Evidence of Heavy Nuclei from the Neutron Star Crust in Magnetar Bursts
arXiv:2604.24750 · doi:10.3847/1538-4357/ae6665
Abstract
The crust of a neutron star (NS) provides a unique laboratory for studying matter under extreme density and magnetic field conditions that cannot be realized in terrestrial experiments. However, direct observational constraints on its composition have remained very limited. Magnetar bursts provide a promising means to probe the nuclear composition of the outer crust, as their energy release may be associated with stress-driven yielding of the crustal Coulomb lattice (including plastic deformation) and magnetic reconnection in the surrounding magnetosphere. We develop a general-purpose radiative transfer framework for a strongly magnetized electron--ion thermal plasma (MEITP) and apply it to the observed X-ray burst spectra. The spectral fits disfavor light-ion compositions and instead favor plasmas characterized by effective charge numbers around . These results provide spectral evidence for the participation of heavy nuclei in magnetar bursts, offer new observational constraints on the baryonic content and the location of the emitting fireballs, and further imply a crustal origin of the heavy ions.
Minor corrections
References in corpus (29)
- Physics of Strongly Magnetized Neutron Stars
- A fast radio burst associated with a Galactic magnetar
- A bright millisecond-duration radio burst from a Galactic magnetar
- The strongest cosmic magnets: Soft Gamma-ray Repeaters and Anomalous X-ray Pulsars
- HXMT Identification of a non-thermal X-ray burst from SGR J1935+2154 and with FRB 200428
- A peculiar hard X-ray counterpart of a Galactic fast radio burst
- FRB Coherent Emission from Decay of Alfven Waves
- Magnetically-driven crustquakes in neutron stars
- The NICER View of the 2020 Burst Storm and Persistent Emission of SGR 1935+2154
- Fast radio bursts and their high-energy counterpart from magnetar magnetospheres
- Burst properties of the most recurring transient magnetar SGR J1935+2154
- Fermi/GBM View of the 2019 and 2020 Burst Active Episodes of SGR J1935+2154
- On the Distance of SGR 1935+2154 Associated with FRB 200428 and Hosted in SNR G57.2+0.8
- Fast Radio Burst Breakouts from Magnetar Burst Fireballs
- On the rate of crustal failures in young magnetars
- Detection of spectral evolution in the bursts emitted during the 2008-2009 active episode of SGR J1550 - 5418
- Revisit the periodicity of SGR J1935+2154 bursts with updated sample
- Soft Gamma Repeaters and Anomalous X-ray Pulsars: Magnetar Candidates
- Insight-HXMT dedicated 33-day observation of SGR J1935+2154 II. Burst Spectral Catalog
- Tidally-induced Magnetar Super Flare at the Eve of Coalescence with Its Compact Companion
- Fermi-GBM Observations of the SGR J1935+2154 Burst Forest
- The first 7 months of the 2020 X-ray outburst of the magnetar SGR J1935+2154
- Expanding Fireball in Magnetar Bursts and Fast Radio Bursts
- Finding the Particularity of the Active Episode of SGR J1935+2154 during Which FRB 20200428 Occurred: Implication from Statistics of Fermi/GBM X-Ray Bursts
- GECAM Observations of the Galactic Magnetar SGR J1935+2154 during the 2021 and 2022 Burst Active Episodes. I. Burst Catalog
- Comparison of numerical methods for computing the repeated Compton scattering of photons in isotropic media
- A Comptonized Fireball Bubble: Physical Origin of Magnetar Giant Flares
- Unveil A Peculiar Light Curve Pattern of Magnetar Burst with GECAM observations of SGR J1935+2154
- Eclipsed X-ray Bursts from Magnetar SGR J1935+2154 and the Fireball Measurements