Monthly Notices of the Royal Astronomical Society · 2017 · 298 citations · 62 references
FRBs are likely produced near magnetar surfaces through forced magnetic reconnection, producing episodic, repeated outbursts. The study proposes a broad‑brush model of FRB sources and radiation mechanisms, and offers testable predictions. The model requires a ≥10¹⁴ G magnetic field to keep electrons in high Landau states, ensuring coherent curvature radiation that matches the observed brightness temperature. The analysis yields field strengths ≥10¹⁴ G, electric fields ~10¹¹ esu, burst energies ~10³⁶ erg, magnetic energy ≥10⁴⁵ erg, and predicts short, high‑frequency FRB‑like bursts up to optical wavelengths.
We use the observed properties of fast radio bursts (FRBs) and a number of general physical considerations to provide a broad-brush model for the physical properties of FRB sources and the radiation mechanism. We show that the magnetic field in the source region should be at least 10^{14} Gauss. This strong field is required to ensure that the electrons have sufficiently high ground state Landau energy so that particle collisions, instabilities, and strong electric and magnetic fields associated with the FRB radiation do not perturb electrons' motion in the direction transverse to the magnetic field and destroy their coherent motion; coherence is required by the high observed brightness temperature of FRB radiation. The electric field in the source region required to sustain particle motion for a wave period is estimated to be of order 10^{11} esu. These requirements suggest that FRBs are produced near the surface of magnetars perhaps via forced reconnection of magnetic fields to produce episodic, repeated, outbursts. The beaming-corrected energy release in these bursts is estimated to be ~10^{36} ergs, whereas the total energy in the magnetic field is at least ~10^{45} ergs. We provide a number of predictions for this model which can be tested by future observations. One of which is that short duration FRB-like bursts should exist at much higher frequencies, possibly up to optical.
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Radiative processes in astrophysics
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