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Can X-ray emission powered by a spinning-down magnetar explain some gamma-ray burst light-curve features?

N. LyonsDepartment of Physics and Astronomy, University of Leicester, University Road, Leicester, LE1 7RHP. T. O’BrienDepartment of Physics and Astronomy, University of Leicester, University Road, Leicester LE1 7RHBing ZhangDepartment of Physics and Astronomy, University of Nevada Las Vegas, 4505 Maryland Parkway, Box 454002, Las Vegas, NV 89154-4002, USAR. WillingaleDepartment of Physics and Astronomy, University of Leicester, University Road, Leicester LE1 7RHE. TrojaDepartment of Physics and Astronomy, University of Leicester, University Road, Leicester LE1 7RHR. L. C. StarlingDepartment of Physics and Astronomy, University of Leicester, University Road, Leicester LE1 7RH
2010en
ABI

Аннотация

Long-duration gamma-ray bursts (GRBs) are thought to be produced by the core-collapse of a rapidly rotating massive star. This event generates a highly relativistic jet and prompt gamma-ray and X-ray emission arises from internal shocks in the jet or magnetized outflows. If the stellar core does not immediately collapse to a black hole, it may form an unstable, highly magnetized millisecond pulsar or magnetar. As it spins down, the magnetar would inject energy into the jet causing a distinctive bump in the GRB light curve where the emission becomes fairly constant followed by a steep decay when the magnetar collapses. We assume that the collapse of a massive star to a magnetar can launch the initial jet. By automatically fitting the X-ray light curves of all GRBs observed by the Swift satellite, we identified a subset of bursts which have a feature in their light curves which we call an internal plateau – unusually constant emission followed by a steep decay – which may be powered by a magnetar. We use the duration and luminosity of this internal plateau to place limits on the magnetar spin period and magnetic field strength, and find that they are consistent with the most extreme predicted values for magnetars.

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