Coherence constraints on physical parameters at bright radio sources and FRB emission mechanism
arXiv:1901.03260
Abstract
We discuss physical constrains that observations of high brightness temperature coherent radio emission, with brightness temperatures as high as K, impose on the plasma parameters at relativistically moving astrophysical sources. High brightness temperatures imply a minimal plasma energy density at the source. Additional important constraints come from the fact that resonantly emitting particles lose most of their energy to non-resonant inverse Compton and synchrotron processes. We also interpret recent observations of high-to-low frequency drifting features in the spectra of repeating FRBs as analogues of type-III Solar radio bursts produced by reconnection plasma beams within magnetospheres of highly magnetized neutron stars.
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Cited by in corpus (12)
- Fast radio bursts as synchrotron maser emission from decelerating relativistic blast waves
- Characterizing the FRB host galaxy population and its connection to transients in the local and extragalactic Universe
- Fast Radio Burst dispersion measures and rotation measures and the origin of intergalactic magnetic fields
- Fast Radio Bursts from reconnection events in magnetar magnetospheres
- Galactic and cosmological fast radio bursts as scaled-up solar radio bursts
- Chiral anomalous processes in magnetospheres of pulsars and black holes
- Nonlinear optics in strongly magnetized pair plasma, with applications to FRBs
- The Impact of the Environment of White Dwarf Mergers on Fast Radio Bursts
- Frequency drifts in FRBs due to radius-to-frequency mapping in magnetospheres of neutron stars
- Free electron laser in magnetars/Fast Radio Bursts
- Escape of Fast Radio Bursts from magnetars' magnetospheres
- Radiation formation length in astrophysical high brightness sources