Fast radio burst


In radio astronomy, a fast radio burst is a transient radio pulse of length ranging from a fraction of a millisecond to a few milliseconds, caused by some high-energy astrophysical process not yet understood. While extremely energetic at their source, the strength of the signal reaching Earth has been described as 1,000 times less than from a mobile phone on the Moon. The first FRB was discovered by Duncan Lorimer and his student David Narkevic in 2007 when they were looking through archival pulsar survey data, and it is therefore commonly referred to as the Lorimer Burst. Many FRBs have since been recorded, including several that have been detected to repeat in seemingly irregular ways. Nonetheless, one FRB, as of February 2020, has been detected to repeat in a regular way: particularly, FRB 180916 seems to pulse every 16.35 days. Although the exact origin and cause is uncertain, most are extragalactic. The first Milky Way FRB was detected in April 2020.
When the FRBs are polarized, it indicates that they are emitted from a source contained within an extremely powerful magnetic field. The origin of the FRBs has yet to be identified; proposals for their origin range from a rapidly rotating neutron star and a black hole, to extraterrestrial intelligence.
The localization and characterization in 2012 of FRB 121102, one of the three repeating sources, has improved the understanding of the source class. FRB 121102 is identified with a galaxy at a distance of approximately three billion light-years and is embedded in an extreme environment. The first host galaxy identified for a non-repeating burst, FRB 180924, was identified in 2019 and is a much larger and more ordinary galaxy, nearly the size of the Milky Way. In August 2019, astronomers reported the detection of eight more repeating FRB signals. In January 2020, astronomers reported the precise location of a second repeating burst, FRB 180916. One FRB seems to have been in the same location as a known gamma-ray burst.
On 28 April 2020, a pair of millisecond-timescale bursts consistent with observed fast radio bursts, with a fluence of >1.5 million Jy/ms, was detected from the same area of sky as the magnetar SGR 1935+2154. Furthermore, the dispersion measure was too low to have originated anywhere outside of the Milky Way. Although it was thousands of times less intrinsically bright than previously observed fast radio bursts, its comparative proximity rendered it the most powerful fast radio burst yet observed, reaching a peak flux of either a few thousand or several hundred thousand Janskies, comparable to the brightness of the radio sources Cassiopeia A and Cygnus A at the same frequencies. This established magnetars as at least one ultimate source of fast radio bursts, although the exact cause remains unknown. On 1 June 2020, astronomers reported narrowing down the source of Fast Radio Bursts, which may now plausably include "compact-object mergers and magnetars arising from normal core collapse supernovae".

Detection

The first fast radio burst to be described, the Lorimer Burst FRB 010724, was detected in 2007 in archived data recorded by the Parkes Observatory on 24 July 2001. Since then, most known FRBs have been found in previously recorded data. On 19 January 2015, astronomers at Australia's national science agency reported that a fast radio burst had been observed for the first time live, by the Parkes Observatory.

Features

Fast radio bursts are bright, unresolved, broadband, millisecond flashes found in parts of the sky. Unlike many radio sources, the signal from a burst is detected in a short period of time with enough strength to stand out from the noise floor. The burst usually appears as a single spike of energy without any change in its strength over time. The bursts last for several milliseconds. The bursts come from all over the sky, and are not concentrated on the plane of the Milky Way. Known FRB locations are biased by the parts of the sky that the observatories can image.
Many have radio frequencies detected around 1400 MHz; a few have been detected at lower frequencies in the range of 400–800 MHz. The component frequencies of each burst are delayed by different amounts of time depending on the wavelength. This delay is described by a value referred to as a dispersion measure. This results in a received signal that sweeps rapidly down in frequency, as longer wavelengths are delayed more.

Extragalactic origin

The interferometer UTMOST has put a lower limit of 10,000 kilometers for the distance to the FRBs it has detected, supporting the case for an astronomical, rather than terrestrial, origin. This limit can be determined from the fact that closer sources would have a curved wave front that could be detected by the multiple antennas of the interferometer.
Fast radio bursts have pulse dispersion measurements, much larger than expected for a source inside the Milky Way galaxy and consistent with propagation through an ionized plasma. Furthermore, their distribution is isotropic ; consequently they are conjectured to be of extragalactic origin.

Bursts observed

Fast radio bursts are named by the date the signal was recorded, as "FRB YYMMDD".

2007 (Lorimer Burst)

The first FRB detected, the Lorimer Burst FRB 010724, was discovered in 2007 when Duncan Lorimer assigned his student David Narkevic to look through archival data taken in 2001 by the Parkes radio dish in Australia.
Analysis of the survey data found a 30-jansky dispersed burst which occurred on 24 July 2001, less than 5 milliseconds in duration, located 3° from the Small Magellanic Cloud. The reported burst properties argue against a physical association with the Milky Way galaxy or the Small Magellanic Cloud. The burst became known as the Lorimer Burst. The discoverers argue that current models for the free electron content in the Universe imply that the burst is less than 1 gigaparsec distant. The fact that no further bursts were seen in 90 hours of additional observations implies that it was a singular event such as a supernova or merger of relativistic objects. It is suggested that hundreds of similar events could occur every day and, if detected, could serve as cosmological probes.

2010

In 2010 there was a report of 16 similar pulses, clearly of terrestrial origin, detected by the Parkes radio telescope and given the name perytons. In 2015 perytons were shown to be generated when microwave oven doors were opened during a heating cycle, with detected emission being generated by the microwave oven's magnetron tube as it was being powered off.

2011

In 2015, FRB 110523 was discovered in archival data collected in 2011 from the Green Bank Telescope. It was the first FRB for which linear polarization was detected. Measurement of the signal's dispersion delay suggested that this burst was of extragalactic origin, possibly up to 6 billion light-years away.

2012

of McGill University estimated that as many as 10,000 fast radio bursts may occur per day over the entire sky.

FRB 121102

An observation in 2012 of a fast radio burst in the direction of Auriga in the northern hemisphere using the Arecibo radio telescope confirmed the extragalactic origin of fast radio pulses by an effect known as plasma dispersion.
In November 2015, astronomer Paul Scholz at McGill University in Canada, found ten non-periodically repeated fast radio pulses in archival data gathered in May and June 2015 by the Arecibo radio telescope. The ten bursts have dispersion measures and sky positions consistent with the original burst FRB 121102, detected in 2012. Like the 2012 burst, the 10 bursts have a plasma dispersion measure that is three times larger than possible for a source in the Milky Way Galaxy.
The team thinks that this finding rules out self-destructive, cataclysmic events that could only occur once, such as the collision between two neutron stars. According to the scientists, the data support an origin in a young rotating neutron star, or in a highly magnetized neutron star, or from highly magnetized pulsars travelling through asteroid belts, or from an intermittent Roche lobe overflow in a neutron star-white dwarf binary.
On 16 December 2016 six new FRBs were reported in the same direction. this is one of only two instances in which these signals have been found twice in the same location in space. FRB 121102 is located at least 1150 AU from Earth, excluding the possibility of a human-made source, and is almost certainly extragalactic in nature.
As of April 2018, FRB 121102 is thought to be co-located in a dwarf galaxy about three billion light-years from Earth with a low-luminosity active galactic nucleus, or a previously unknown type of extragalactic source, or a young neutron star energising a supernova remnant.
On 26 August 2017, astronomers using data from the Green Bank Telescope detected 15 additional repeating FRBs coming from FRB 121102 at 5 to 8 GHz. The researchers also noted that FRB 121102 is presently in a "heightened activity state, and follow-on observations are encouraged, particularly at higher radio frequencies". The waves are highly polarized, meaning "twisting" transverse waves, that could only have formed when passing through hot plasma with an extremely strong magnetic field. FRB 121102's radio bursts are about 500 times more polarized than those from any other FRB to date. Since it is a repeating FRB source, it suggests that it does not come from some one-time cataclysmic event, so one hypothesis, first advanced in January 2018, proposes that these particular repeating bursts may come from a dense stellar core called a neutron star near an extremely powerful magnetic field, such as one near a massive black hole, or one embedded in a nebula.
In April 2018, it was reported that FRB 121102 consisted of 21 bursts spanning one hour. In September 2018, an additional 72 bursts spanning five hours had been detected using a convolutional neural network. In September 2019, more repeating signals, 20 pulses on 3 September 2019, were reported to have been detected from FRB 121102 by the Five-hundred-meter Aperture Spherical Telescope. In June 2020, astronomers from Jodrell Bank Observatory reported that FRB 121102 exhibits the same radio burst behavior every 157 days, suggesting that the bursts may be associated with "the orbital motion of a massive star, a neutron star or a black hole".

2013

In 2013, four bursts were identified that supported the likelihood of extragalactic sources.

2014

In 2014, FRB 140514 was caught 'live' and was found to be 21% circularly polarised.
Fast radio bursts discovered up until 2015 had dispersion measures that were close to multiples of 187.5 pc cm−3. However subsequent observations do not fit this pattern.

2015

FRB 150418

On 18 April 2015, FRB 150418 was detected by the Parkes observatory and within hours, several telescopes including the Australia Telescope Compact Array caught an apparent radio "afterglow" of the flash, which took six days to fade. The Subaru telescope was used to find what was thought to be the host galaxy and determine its redshift and the implied distance to the burst.
However, the association of the burst with the afterglow was soon disputed, and by April 2016 it was established that the "afterglow" originates from an active galactic nucleus that is powered by a supermassive black hole with dual jets blasting outward from the black hole. It was also noted that what was thought to be an "afterglow", did not fade away as would be expected, meaning that the variable AGN is unlikely to be associated with the actual fast radio burst.

2017

The upgraded Molonglo Observatory Synthesis Telescope, near Canberra, reported finding three more FRBs. A 180-day three-part survey in 2015 and 2016 found three FRBs at 843 MHz. Each FRB located with a narrow elliptical 'beam'; the relatively narrow band 828–858 MHz gives a less precise dispersion measure.
A short survey using part of Australian Square Kilometre Array Pathfinder found one FRB in 3.4 days. FRB170107 was bright with a fluence of 58±6 Jy ms.
According to Anastasia Fialkov and Abraham Loeb, FRB's could be occurring as often as once per second. Earlier research could not identify the occurrence of FRB's to this degree.

2018

Three FRBs were reported in March 2018 by Parkes Observatory in Australia. One had the highest signal to noise ratio yet seen of 411.
The unusual CHIME radio telescope, operational from September 2018, will be used to detect "hundreds" of fast radio bursts as a secondary objective to its cosmological observations. FRB 180725A was reported by CHIME as the first detection of a FRB under 700 MHz – as low as 580 MHz.
In October 2018, astronomers reported 19 more new non-repeating FRB bursts detected by the Australian Square Kilometre Array Pathfinder. These included three with dispersion measure smaller than seen before.

FRB 180814

On 9 January 2019, astronomers announced the discovery of a second repeating FRB source, named FRB 180814, by CHIME. Six bursts were detected between August and October 2018, "consistent with originating from a single position on the sky". The detection was made during CHIME's pre-commissioning phase, during which it operated intermittently, suggesting a "substantial population of repeating FRBs", and that the new telescope would make more detections.
Some news media reporting of the discovery speculated that the repeating FRB could be evidence of extraterrestrial intelligence, a possibility explored in relation to previous FRBs by some scientists, but not raised by the discoverers of FRB 180814.

FRB 180916

FRB 180916, more formally FRB 180916.J0158+65, is a repeating FRB discovered by CHIME, that later studies found to have originated from a medium-sized spiral galaxy about 500 million light-years away – the closest FRB discovered to date. It is also the first FRB observed to have a regular periodicity. Bursts are clustered into a period of about four days, followed by a dormant period of about 12 days, for a total cycle length of days. Additional followup studies of the repeating FRB by the Swift XRT and UVOT instruments were reported on 4 February 2020; by the Sardinia Radio Telescope and Medicina Northern Cross Radio Telescope, on 17 February 2020; and, by the Galileo telescope in Asiago, also on 17 February 2020. Further observations were made by the Chandra X-ray Observatory on 3 and 18 December, 2019, with no significant x-ray emissions detected at the FRB 180916 location, or from the host galaxy SDSS J015800.28+654253.0. On 6 April 2020, followup by the Global MASTER-Net were reported on The Astronomer's Telegram.

FRB 181112

FRB 181112 was mysteriously unaffected after believed to have passed through the Halo of an intervening galaxy.

2019

FRB 180924

FRB 180924 is the first non-repeating FRB to be traced to its source. The source is a galaxy 3.6 billion light-years away. The galaxy is nearly as large as the Milky Way and about 1000 times larger than the source of FRB 121102. While the latter is an active site of star formation and a likely place for magnetars, the source of FRB 180924 is an older and less active galaxy.
Because the source was nonrepeating, the astronomers had to scan large areas with the 36 telescopes of ASKAP. Once a signal was found, they used the Very Large Telescope, the Gemini Observatory in Chile, and the W. M. Keck Observatory in Hawaii to identify its host galaxy and determine its distance. Knowing the distance and source galaxy properties, enables a study of the composition of the intergalactic medium.

June 2019

On 28 June 2019, Russian astronomers reported the discovery of nine FRB events, which include FRB 151125, the third repeating one ever detected, from the direction of the M 31 and M 33 galaxies during the analysis of archive data produced by the BSA/LPI large phased array radio telescope at the Pushchino Radio Astronomy Observatory.

FRB 190523

On 2 July 2019, astronomers reported that FRB 190523, a non-repeating FRB, has been discovered and, notably, localized to a few-arcsecond region containing a single massive galaxy at a redshift of 0.66, nearly 8 billion light-years away from Earth.

August 2019

In August 2019, the CHIME Fast Radio Burst Collaboration reported the detection of eight more repeating FRB signals.

FRB 191223

On 29 December 2019, Australian astronomers from the Molonglo Observatory Synthesis Telescope (MOST

FRB 191228

On 31 December 2019, Australian astronomers, using the Australian Square Kilometre Array Pathfinder, reported the detection of FRB 191228 in the Piscis Austrinus constellation, DEC = -29:46).

2020

FRB 200428

On 28 April 2020, astronomers at the Canadian Hydrogen Intensity Mapping Experiment, reported the detection of a bright radio burst from the direction of the Galactic magnetar SGR 1935+2154 about 30,000 light years away in the Vulpecula constellation. The burst had a DM of 332.8 pc/cc The STARE2 team independently detected the burst and reported that the burst had a fluence of >1.5 MJy ms, establishing the connection between this burst and FRBs at extragalactic distances The burst was then referred to as FRB 200428 The detection is notable, as the STARE2 team claim it is the first ever FRB detected inside the Milky Way, and the first ever to be linked to a known source. That link strongly supports the idea that fast radio bursts emanate from magnetars.

Origin hypotheses

Because of the isolated nature of the observed phenomenon, the nature of the source remains speculative., there is no generally accepted explanation. The sources are thought to be a few hundred kilometers or less in size, as the bursts last for only a few milliseconds, and if the bursts come from cosmological distances, their sources must be very energetic, generating as much energy in a millisecond burst as the Sun does in 80 years.
One possible explanation would be a collision between very dense objects like merging black holes or neutron stars. It has been suggested that there is a connection to gamma-ray bursts. Some have speculated that these signals might be artificial in origin, that they may be signs of extraterrestrial intelligence. Analogously, when the first pulsar was discovered, it was thought that the fast, regular pulses could possibly originate from a distant civilization, and the source nicknamed "LGM-1". In 2007, just after the publication of the e-print with the first discovery, it was proposed that fast radio bursts could be related to hyperflares of magnetars. In 2015 three studies supported the magnetar hypothesis.
Especially energetic supernovae could be the source of these bursts. Blitzars were proposed in 2013 as an explanation.
In 2014 it was suggested that following dark matter-induced collapse of pulsars, the resulting expulsion of the pulsar magnetospheres could be the source of fast radio bursts. In 2015 it was suggested that FRBs are caused by explosive decays of axion miniclusters. Another exotic possible source are cosmic strings that produced these bursts as they interacted with the plasma that permeated the early Universe. In 2016 the collapse of the magnetospheres of Kerr–Newman black holes were proposed to explain the origin of the FRBs' "afterglow" and the weak gamma-ray transient 0.4 s after GW 150914. It has also been proposed that if fast radio bursts originate in black hole explosions, FRBs would be the first detection of quantum gravity effects. In early 2017, it was proposed that the strong magnetic field near a supermassive black hole could destabilize the current sheets within a pulsar's magnetosphere, releasing trapped energy to power the FRBs.
Repeated bursts of FRB 121102 have initiated multiple origin hypotheses. A coherent emission phenomenon known as superradiance, which involves large-scale entangled quantum mechanical states possibly arising in environments such as active galactic nuclei, has been proposed to explain these and other associated observations with FRBs. In July 2019, astronomers reported that non-repeating Fast Radio Bursts s may not be one-off events, but actually FRB repeaters with repeat events that have gone undetected and, further, that FRBs may be formed by events that have not yet been seen or considered. Additional possibilities include that FRBs may originate from nearby stellar flares.

List of bursts

NameDate and time for 1581.804688 MHzRA
Decl.
DM
Width
Peak flux
Notes
FRB 0106212001-06-21 13:02:10.7957467.80.4
FRB 0107242001-07-24 19:50:01.633754.630"Lorimer Burst"
FRB 0110252001-10-25 00:29:13.237909.40.3
FRB 0906252009-06-25 21:53:52.85899.6<1.9>2.2
FRB 1102202011-02-20 01:55:48.957944.385.61.3
FRB 1105232011-05-23623.301.730.6700–900 MHz at Green Bank radio telescope, detection of both circular and linear polarization.
FRB 1106272011-06-27 21:33:17.474723.0<1.40.4
FRB 1107032011-07-03 18:59:40.5911103.6<4.30.5
FRB 1201272012-01-27 08:11:21.723553.3<1.10.5
FRB 1210022012-10-02 13:09:18.4021628.762.1; 3.70.35double pulse 5.1 ms apart
FRB 1210022012-10-02 13:09:18.501629.18<0.3>2.3
FRB 1211022012-11-02 06:35:53.2445573.00.4by Arecibo radio telescope
Repeating bursts, very polarized.
FRB 1306262013-06-26 14:56:00.06952.4<0.12>1.5
FRB 1306282013-06-28 03:58:00.02469.88<0.05>1.2
FRB 1307292013-07-29 09:01:52.64861<4>3.5
FRB 1311042013-11-04 18:04:01.2779.0<0.641.12'near' Carina Dwarf Spheroidal Galaxy
2014-05-14 17:14:11.06562.72.80.4721 ±7 per cent circular polarization
FRB 1502152015-02-15 20:41:41.7141105.62.80.743% linear, 3% circular polarized. Low galactic latitude. Low/zero rotation measure. Detected in real time. Not detected in follow up observations of gamma rays, X-rays, neutrinos, IR etc.
FRB 1504182015-04-18 04:29776.20.82.4Detection of linear polarization. The origin of the burst is disputed.
unnamed2015-05-17
2015-06-02
559 0.02–0.312.8–8.710 repeat bursts at FRB 121102 location: 2 bursts on May 17 and 8 bursts on June 2
and 1 on 13 Nov 2015, 4 on 19 Nov 2015, and 1 on 8 Dec 2015
FRB 1506102015-06-10 05:26:59.39610:44:26−40:05:231593.920.7
FRB 1508072015-08-07 17:53:55.779922:40:23– 55:16266.50.35±0.05120±3080% linearly polarised, Galactic latitude −54.4°, Decl ±4 arcmin, RA ±1.5 arcmin, highest peak flux
FRB 1512062015-12-06 06:17:52.77819:21:25−04:07:541909.83.00.3
FRB 1512302015-12-30 16:15:46.52509:40:50−03:27:05960.44.40.42
FRB 1601022016-01-02 08:28:39.37422:38:49−30:10:502596.13.40.5
FRB 1603172016-03-17 09:00:36.53007:53:47−29:36:31116521>3.0UTMOST, Decl ± 1.5°
FRB 1604102016-04-10 08:33:39.68008:41:25+06:05:052784>7.0UTMOST, Decl ± 1.5°
FRB 1606082016-06-08 03:53:01.08807:36:42−40:47:526829>4.3UTMOST, Decl ± 1.5°
FRB 1701072017-01-07 20:05:45.139711:23– 05:01609.52.627±4first by ASKAP, high fluence ~58 Jy ms. In Leo. Galactic latitude 51°, Distance 3.1 Gpc, isotropic energy ~3 x 1034 J
unnamed2017-08-26 13:51:44558??15 more bursts at the location of FRB 121102 detected by Green Bank Telescope over a 24-minute interval, bringing the total received bursts from this location to 34.
FRB 1708272017-08-27 16:20:18176.40.395low DM
FRB 1709222017-09-22 11:23:33.4111126extreme scattering
FRB 1710202017-10-20 10:27:58.59822:15– 19:40114.1±0.23.2ASKAP s/n=19.5 G-Long'=29.3 G-lat'=-51.3 Lowest DM so far.
FRB 1712092017-12-09 20:34:23.514582.52.3Seems to be in the same location as GRB 110715A
FRB 1803012018-03-01 07:34:19.7652030.5positive spectrum, from Breakthrough Listen
FRB 1803092018-03-09 02:49:32.99263.470.57612
FRB 1803112018-03-11 04:11:54.801575.6122.4
FRB 180725A2018-07-25 17:59:43.115716.62first detection of an FRB at radio frequencies below 700 MHz
Realtime detection by CHIME.
FRB 180814Detected by CHIME. Second repeating FRB to be discovered and first since 2012.
FRB 1809162018-09-16 10:15:19.803repeating FRB localized to a nearby spiral galaxy. 16.35 day periodicity.
FRB 1809242018-09-24 16:23:12.6265361.421.316first non-repeating FRB whose source has been localized; a galaxy 3.6 billion light-years away
FRB 190523A non-repeating FRB – localised to a galaxy at nearly 8 billion lyr
FRB 2004282020-04-28332.8first ever detected FRB inside the Milky Way about 30,000 lyr; first ever linked to a known source: the magnetar SGR 1935+2154

FRBs are also cataloged at frbcat.