High-energy Emission from Pulsar Outer Magnetospheres
arXiv:astro-ph/0307236 · doi:10.1086/517510
Abstract
We investigate a stationary pair production cascade in the outer magnetosphere of an isolated, spinning neutron star. The charge depletion due to global flows of charged particles, causes a large electric field along the magnetic field lines. Migratory electrons and/or positrons are accelerated by this field to radiate gamma-rays via curvature and inverse-Compton processes. Some of such gamma-rays collide with the X-rays to materialize as pairs in the gap. The replenished charges partially screen the electric field, which is self-consistently solved together with the energy distribution of particles and gamma-rays at each point along the field lines. By solving the set of Maxwell and Boltzmann equations, we demonstrate that an external injection of charged particles at nearly Goldreich-Julian rate does not quench the gap but shifts its position and that the particle energy distribution cannot be described by a power-law. The injected particles are accelerated in the gap and escape from it with large Lorentz factors. We show that such escaping particles migrating outside of the gap contribute significantly to the gamma-ray luminosity for young pulsars and that the soft gamma-ray spectrum between 100 MeV and 3 GeV observed for the Vela pulsar can be explained by this component. We also discuss that the luminosity of the gamma-rays emitted by the escaping particles is naturally proportional to the square root of the spin-down luminosity.
24 pages, 11 figures; to appear in the inaugural (Sep) issue of Progress in Astrophysics Researches (a new book series)
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- The very-high energy emission from pulsars: a case for inverse Compton scattering
- Uncertainties of Modeling Gamma-Ray Pulsar Light Curves with Vacuum Dipole Magnetic Field
- A re-visit of the phase-resolved X-ray and γ-ray spectra of the Crab pulsar
- Gamma-Ray Light Curves from Pulsar Magnetospheres with Finite Conductivity
- Particle Acceleration and Non-Thermal Emission in Pulsar Outer Magnetospheric Gap
- On particle acceleration and very high energy gamma-ray emission in Crab-like pulsars
- Inverse Compton model of pulsar high energy emission
- Probing gamma-ray emissions of Fermi-LAT pulsars with a non-stationary outer gap model
- Modeling of the gamma-ray pulsed spectra of Geminga, Crab, and Vela with synchro-curvature radiation
- Pulsed VHE emission from the Crab Pulsar in the context of magnetocentrifugal particle acceleration
- Magnetic Pair Creation Transparency in Gamma-Ray Pulsars
- Constraints on the steady and pulsed very high energy gamma-ray emission from observations of PSR B1951+32/CTB 80 with the MAGIC Telescope
- Non-thermal emissions from outer magnetospheric accelerators of middle-aged pulsars
- The gamma-ray spectrum of Geminga and the inverse Compton model of pulsar high energy emission
- Pulsed emission from a rotating off-centred magnetic dipole in vacuum
- Gamma-radiation sky maps from compact binaries