Delayed Nickel Decay in Gamma Ray Bursts
arXiv:astro-ph/0205321 · doi:10.1086/343858
Abstract
Recently observed emission lines in the X-ray afterglow of gamma ray bursts suggest that iron group elements are either produced in the gamma ray burst, or are present nearby. If this material is the product of a thermonuclear burn, then such material would be expected to be rich in Nickel-56. If the nickel remains partially ionized, this prevents the electron capture reaction normally associated with the decay of Nickel-56, dramatically increasing the decay timescale. Here we examine the consequences of rapid ejection of a fraction of a solar mass of iron group material from the center of a collapsar/hypernova. The exact rate of decay then depends on the details of the ionization and therefore the ejection process. Future observations of iron, nickel and cobalt lines can be used to diagnose the origin of these elements and to better understand the astrophysical site of gamma ray bursts. In this model, the X-ray lines of these iron-group elements could be detected in suspected hypernovae that did not produce an observable gamma ray burst due to beaming.
References in corpus (5)
- Beaming in Gamma-Ray Bursts: Evidence for a Standard Energy Reservoir
- Fundamental Physical Parameters of Collimated Gamma-Ray Burst Afterglows
- The Signature of Supernova Ejecta Measured in the X-ray Afterglow of Gamma-Ray Burst 011211
- The difficulty in using orphan afterglows to measure gamma-ray burst beaming
- Broad and shifted iron-group emission lines in gamma-ray bursts as tests of the hypernova scenario
Cited by in corpus (5)
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- The X-ray afterglows of gamma-ray bursts GRB 001025A and GRB 010220 observed with XMM-Newton
- On the Contribution of Gamma Ray Bursts to the Galactic Inventory of Some Intermediate Mass Nuclei
- A Failed Gamma-Ray Burst with Dirty Energetic Jets Spirited Away? New Implications for the GRB-SN Connection from Supernova 2002ap
- Hypernova and Gamma-Ray Burst Remnants as TeV Unidentified Sources