Strong gravitational lensing as a tool to investigate the structure of jets at high energies
arXiv:1403.5316 · doi:10.1088/0004-637X/788/2/139
Abstract
The components of blazar jets that emit radiation span a factor of in scale. The spatial structure of these emitting regions depends on the observed energy. Photons emitted at different sites cross the lens plane at different distances from the mass-weighted center of the lens. Thus there are differences in magnification ratios and time delays between the images of lensed blazars observed at different energies. When the lens structure and redshift are known from optical observations, these constraints can elucidate the structure of the source at high energies. At these energies, current technology is inadequate to resolve these sources and the observed light curve is thus the sum of the images. Durations of -ray flares are short compared with typical time delays; thus both the magnification ratio and the time delay can be measured for the delayed counterparts. These measurements are a basis for localizing the emitting region along the jet. To demonstrate the power of strong gravitational lensing, we build a toy model based on the best studied and the nearest relativistic jet M87.
Accepted for publication in ApJ
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- Resolving the High Energy Universe with Strong Gravitational Lensing: The Case of PKS 1830-211
- Gravitational Lenses as High-Resolution Telescopes
- The Legacy of Einstein's Eclipse, Gravitational Lensing
- How gravitational lensing helps gamma-ray photons avoid absorption
- Radio follow-up of the gamma-ray flaring gravitational lens JVAS B0218+357
- Strongly Lensed Jets, Time Delays, and the Value of H0
- Gravitational Light Bending Prevents Absorption in Gravitational Lenses
- Strong gravitational lensing of blazar gamma-radiation and intergalactic magnetic fields
- Modeling Fermi Large Area Telescope and Multiwavelength Data from Blazars
- Tension of toroidal magnetic field in reconnection plasmoids and relativistic jets
- Constraining -ray dissipation site in gravitationally lensed quasar -- PKS 1830211