Propagation effects in the FRB 20121102A spectra
arXiv:2010.15145 · doi:10.3847/1538-4357/ac3250
Abstract
We advance theoretical methods for studying propagation effects in the Fast Radio Burst (FRB) spectra. We derive their autocorrelation function in the model with diffractive lensing and strong Kolmogorov-type scintillations and analytically obtain the spectra lensed on different plasma density profiles. With these tools, we reanalyze the highest frequency 4-8 GHz data of Gajjar et al. (2018) for the repeating FRB 20121102A (FRB 121102). In the data we discover, first, a remarkable spectral structure of almost equidistant peaks separated by MHz. We suggest that it can originate from diffractive lensing of the FRB signals on a compact gravitating object of mass or on a plasma underdensity near the source. Second, the spectra include erratic interstellar, presumably Milky Way scintillations. We extract their decorrelation bandwidth MHz at reference frequency 6 GHz. The third feature is a GHz-scale pattern which, as we find, linearly drifts with time and presumably represents a wide-band propagation effect, e.g. GHz-scale scintillations. Fourth, many spectra are dominated by a narrow peak at 7.1 GHz. We suggest that it can be caused by a propagation through a plasma lens, e.g., in the host galaxy. Fifth, separating the propagation effects, we give strong arguments that the intrinsic progenitor spectrum has narrow GHz bandwidth and variable central frequency. This confirms expectations from the previous observations. We discuss alternative interpretations of the above spectral features.
28 pages, 23 figures; version accepted in ApJ
References in corpus (37)
- The generalised Lomb-Scargle periodogram. A new formalism for the floating-mean and Keplerian periodograms
- The direct localization of a fast radio burst and its host
- A fast radio burst associated with a Galactic magnetar
- A bright millisecond-duration radio burst from a Galactic magnetar
- The Host Galaxy and Redshift of the Repeating Fast Radio Burst FRB 121102
- A census of baryons in the Universe from localized fast radio bursts
- Fast Radio Bursts
- A repeating fast radio burst source localised to a nearby spiral galaxy
- A single fast radio burst localized to a massive galaxy at cosmological distance
- The Repeating Fast Radio Burst FRB 121102 as Seen on Milliarcsecond Angular Scales
- A fast radio burst localised to a massive galaxy
- A Multi-telescope Campaign on FRB 121102: Implications for the FRB Population
- Repeating behaviour of FRB 121102: periodicity, waiting times and energy distribution
- LOFAR Detection of 110-188 MHz Emission and Frequency-Dependent Activity from FRB 20180916B
- The host galaxies and progenitors of Fast Radio Bursts localized with the Australian Square Kilometre Array Pathfinder
- A sample of low energy bursts from FRB 121102
- Detection of two bright radio bursts from magnetar SGR 1935+2154
- Spectropolarimetric analysis of FRB 181112 at microsecond resolution: Implications for Fast Radio Burst emission mechanism
- Fast Radio Bursts and Axion Miniclusters
- The 60 pc Environment of FRB 20180916B
- On the Time-Frequency Downward Drifting of Repeating Fast Radio Bursts
- Detection of Repeating FRB 180916.J0158+65 Down to Frequencies of 300 MHz
- The Crab Pulsar at Centimeter Wavelengths II: Single Pulses
- Scattering analysis of LOFAR pulsar observations
- Axion Stars and Fast Radio Bursts
- Radio-emission of axion stars
- The finite source size effect and the wave optics in gravitational lensing
- CHIME/FRB Catalog 1 results: statistical cross-correlations with large-scale structure
- Merger of Dark Matter Axion Clumps and Resonant Photon Emission
- Measuring the cosmic proper distance from fast radio bursts
- Electromagnetic Bursts from Mergers of Oscillons in Axion-like Fields
- A Dual-band Radio Observation of FRB 121102 with the Deep Space Network and the Detection of Multiple Bursts
- Multiwavelength Radio Observations of Two Repeating Fast Radio Burst Sources: FRB 121102 and FRB 180916.J0158+65
- Self-modulation of Fast Radio Bursts
- Nanolensed fast Radio Bursts
- Fast radio bursts as strong waves interacting with ambient medium
- Probing WHIM around Galaxy Clusters with Fast Radio Bursts and the Sunyaev-Zel'dovich effect