Gamma rays from a reverse shock with turbulent magnetic fields in GRB 180720B

Fuente: arXiv
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Main Authors: Arimoto, Makoto, Asano, Katsuaki, Kawabata, Koji S., Toma, Kenji, Gill, Ramandeep, Granot, Jonathan, Ohno, Masanori, Takahashi, Shuta, Ogino, Naoki, Goto, Hatsune, Nakamura, Kengo, Nakaoka, Tatsuya, Takagi, Kengo, Kawabata, Miho, Yamanaka, Masayuki, Sasada, Mahito, Razzaque, Soebur
Format: Preprint
Published: 2023
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author Arimoto, Makoto
Asano, Katsuaki
Kawabata, Koji S.
Toma, Kenji
Gill, Ramandeep
Granot, Jonathan
Ohno, Masanori
Takahashi, Shuta
Ogino, Naoki
Goto, Hatsune
Nakamura, Kengo
Nakaoka, Tatsuya
Takagi, Kengo
Kawabata, Miho
Yamanaka, Masayuki
Sasada, Mahito
Razzaque, Soebur
author_facet Arimoto, Makoto
Asano, Katsuaki
Kawabata, Koji S.
Toma, Kenji
Gill, Ramandeep
Granot, Jonathan
Ohno, Masanori
Takahashi, Shuta
Ogino, Naoki
Goto, Hatsune
Nakamura, Kengo
Nakaoka, Tatsuya
Takagi, Kengo
Kawabata, Miho
Yamanaka, Masayuki
Sasada, Mahito
Razzaque, Soebur
contents Gamma-ray bursts (GRBs) are the most electromagnetically luminous cosmic explosions. They are powered by collimated streams of plasma (jets) ejected by a newborn stellar-mass black hole or neutron star at relativistic velocities (near the speed of light). Their short-lived (typically tens of seconds) prompt $γ$-ray emission from within the ejecta is followed by long-lived multi-wavelength afterglow emission from the ultra-relativistic forward shock. This shock is driven into the circumburst medium by the GRB ejecta that are in turn decelerated by a mildly-relativistic reverse shock. Forward shock emission was recently detected up to teraelectronvolt-energy $γ$-rays, and such very-high-energy emission was also predicted from the reverse shock. Here we report the detection of optical and gigaelectronvolt-energy $γ$-ray emission from GRB 180720B during the first few hundred seconds, which is explained by synchrotron and inverse-Compton emission from the reverse shock propagating into the ejecta, implying a low-magnetization ejecta. Our optical measurements show a clear transition from the reverse shock to the forward shock driven into the circumburst medium, accompanied by a 90-degree change in the mean polarization angle and fluctuations in the polarization degree and angle. This indicates turbulence with large-scale toroidal and radially-stretched magnetic field structures in the reverse and forward shocks, respectively, which tightly couple to the physics of relativistic shocks and GRB jets -- launching, composition, dissipation and particle acceleration.
format Preprint
id arxiv_https___arxiv_org_abs_2310_04144
institution arXiv
publishDate 2023
record_format arxiv
spellingShingle Gamma rays from a reverse shock with turbulent magnetic fields in GRB 180720B
Arimoto, Makoto
Asano, Katsuaki
Kawabata, Koji S.
Toma, Kenji
Gill, Ramandeep
Granot, Jonathan
Ohno, Masanori
Takahashi, Shuta
Ogino, Naoki
Goto, Hatsune
Nakamura, Kengo
Nakaoka, Tatsuya
Takagi, Kengo
Kawabata, Miho
Yamanaka, Masayuki
Sasada, Mahito
Razzaque, Soebur
High Energy Astrophysical Phenomena
Gamma-ray bursts (GRBs) are the most electromagnetically luminous cosmic explosions. They are powered by collimated streams of plasma (jets) ejected by a newborn stellar-mass black hole or neutron star at relativistic velocities (near the speed of light). Their short-lived (typically tens of seconds) prompt $γ$-ray emission from within the ejecta is followed by long-lived multi-wavelength afterglow emission from the ultra-relativistic forward shock. This shock is driven into the circumburst medium by the GRB ejecta that are in turn decelerated by a mildly-relativistic reverse shock. Forward shock emission was recently detected up to teraelectronvolt-energy $γ$-rays, and such very-high-energy emission was also predicted from the reverse shock. Here we report the detection of optical and gigaelectronvolt-energy $γ$-ray emission from GRB 180720B during the first few hundred seconds, which is explained by synchrotron and inverse-Compton emission from the reverse shock propagating into the ejecta, implying a low-magnetization ejecta. Our optical measurements show a clear transition from the reverse shock to the forward shock driven into the circumburst medium, accompanied by a 90-degree change in the mean polarization angle and fluctuations in the polarization degree and angle. This indicates turbulence with large-scale toroidal and radially-stretched magnetic field structures in the reverse and forward shocks, respectively, which tightly couple to the physics of relativistic shocks and GRB jets -- launching, composition, dissipation and particle acceleration.
title Gamma rays from a reverse shock with turbulent magnetic fields in GRB 180720B
topic High Energy Astrophysical Phenomena
url https://arxiv.org/abs/2310.04144