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Flaring gamma-ray emission coincident with a hyperactive fast radio burst source
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abstract
Fast radio bursts (FRBs) are bright milliseconds-duration radio bursts from cosmological distances. Despite intense observational and theoretical studies, their physical origin is still mysterious. One major obstacle is the lack of identification of multi-wavelength counterparts for FRBs at cosmological distances. So far, all the searches other than in the radio wavelength, including those in the gamma-ray energies, have only left upper limits. Here we report a gigaelectronvolt (GeV) gamma-ray flare lasting 15.6 seconds as well as additional evidence of variable gamma-ray emission in temporal and spatial association with the hyper-active, newly discovered repeating FRB 20240114A, which has been localized to a dwarf galaxy at a redshift of 0.13. The energetic, short GeV gamma-ray flare reached a prompt isotropic luminosity of the order of ${10}^{48}~{\rm ergs~{s}^{-1}}$. The additional less-significant gamma-ray flares, if true, also have similar luminosities; such flares could contribute to a 5-day average luminosity of the order of ${10}^{45}~{\rm ergs~{s}^{-1}}$. These high-luminosity flares challenge the traditional FRB engine scenario involving a seconds-period magnetar. Rather, it suggests a powerful, long-lived, but newborn energy source at the location of this active repeater, either directly powering the bursts or indirectly triggering bursts in the vicinity of the FRB engine.
Forward citations
Cited by 3 Pith papers
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A flaring radio counterpart to a fast radio burst reveals a newborn magnetized engine
A compact flaring radio source detected 26 days after FRB 20240114A's first burst shows a synchrotron self-absorption peak, implying a newborn, highly magnetized FRB engine.
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A Search for GeV Emission from Magnetar Giant Flare Candidates with Fermi-LAT
No GeV counterparts are found for six magnetar giant flare candidates; stacked upper limits and fireball modeling indicate baryon-poor outflows that are too faint for Fermi.
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Testing the Young FRB Progenitor Hypothesis: A Crossmatch of Catalog-1 CHIME Bursts with Historic Local Universe Supernovae
A systematic cross-match of 886 local supernovae with 241 CHIME FRBs finds no statistically significant associations, and a rate model implies steep magnetar burst-rate decay with age.
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