Gamma-ray Signatures of r-Process Radioactivity from the Collapse of Magnetized White Dwarfs
arXiv:2603.08792 · doi:10.1103/kr9p-vfmm
Abstract
We predict the gamma-ray line emission from -process nuclei synthesized in the ejecta of the accretion-induced collapse (AIC) of a magnetized, rapidly rotating white dwarf. Using ejecta from a two-dimensional general-relativistic neutrino-magnetohydrodynamic simulation, further evolved with a radiation-hydrodynamics code coupled to an in-situ nuclear reaction network, we construct angle-dependent gamma-ray spectra in the - band via composition-dependent ray-tracing through the ejecta. The emission between 1 and d is dominated by I (h), continuously replenished by the decay of its parent Te (d), with additional contributions from I, Xe, and Te. At d, Co (from Ni decay) becomes the primary emitter. The simultaneous presence of -process and iron-peak gamma-ray lines is distinctive of AIC ejecta and absent in binary neutron star mergers, where iron-peak nuclei are generally not synthesized. Comparing with the continuum sensitivities of planned MeV gamma-ray telescopes (COSI, AMEGO-X, e-ASTROGAM, GRAMS, GammaTPC), we find the brightest -process lines detectable to by GammaTPC and GRAMS, with the signal approaching their sensitivity threshold at . The -process spectral features survive time integration over d exposures, demonstrating robustness against the long observation times required by gamma-ray detectors.
13 pages, 9 figures. Accepted for publication in PRD; added Figs. 2 and 5 and clarifications, conclusions unchanged
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