2008AIP conference proceedingsOpen access

New Relativistic Particle-In-Cell Simulation Studies of Prompt and Early Afterglows from GRBs

Ken‐Ichi Nishikawa, J. Niemiec, H. Sol, Mikhail V. Medvedev, B. Zhang, Å. Nordlund, J. Frederiksen, Philip E. Hardee, Yosuke Mizuno, D. H. Hartmann, G. J. Fishman, Felix A. Aharonian, Werner Hofmann, Frank Rieger

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Abstract

Nonthermal radiation observed from astrophysical systems containing relativistic jets and shocks, e.g., gamma‐ray bursts (GRBs), active galactic nuclei (AGNs), and microquasars commonly exhibit power‐law emission spectra. Recent PIC simulations of relativistic electron‐ion (or electron‐positron) jets injected into a stationary medium show that particle acceleration occurs within the downstream jet. In collisionless, relativistic shocks, particle (electron, positron, and ion) acceleration is due to plasma waves and their associated instabilities (e.g., the Weibel (filamentation) instability) created in the shock region. The simulations show that the Weibel instability is responsible for generating and amplifying highly nonuniform, small‐scale magnetic fields. These fields contribute to the electron’s transverse deflection behind the jet head. The resulting “jitter” radiation from deflected electrons has different properties compared to synchrotron radiation, which assumes a uniform magnetic field. Jitter radiation may be important for understanding the complex time evolution and/or spectra in gamma‐ray bursts, relativistic jets in general, and supernova remnants.

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Nonthermal radiation observed from astrophysical systems containing relativistic jets and shocks, e.g., gamma‐ray bursts (GRBs), active galactic nuclei (AGNs), and microquasars commonly exhibit power‐law emission spectra. Recent PIC simulations of relativistic electron‐ion (or electron‐positron) jets injected into a stationary medium show that particle acceleration occurs within the downstream jet. In collisionless, relativistic shocks, particle (electron, positron, and ion) acceleration is due to plasma waves and their associated instabilities (e.g., the Weibel (filamentation) instability) created in the shock region. The simulations show that the Weibel instability is responsible for generating and amplifying highly nonuniform, small‐scale magnetic fields. These fields contribute to the electron’s transverse deflection behind the jet head. The resulting “jitter” radiation from deflected electrons has different properties compared to synchrotron radiation, which assumes a uniform magnetic field. Jitter radiation may be important for understanding the complex time evolution and/or spectra in gamma‐ray bursts, relativistic jets in general, and supernova remnants.

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Available abstract

Nonthermal radiation observed from astrophysical systems containing relativistic jets and shocks, e.g., gamma‐ray bursts (GRBs), active galactic nuclei (AGNs), and microquasars commonly exhibit power‐law emission spectra. Recent PIC simulations of relativistic electron‐ion (or electron‐positron) jets injected into a stationary medium show that particle acceleration occurs within the downstream jet. In collisionless, relativistic shocks, particle (electron, positron, and ion) acceleration is due to plasma waves and their associated instabilities (e.g., the Weibel (filamentation) instability) created in the shock region. The simulations show that the Weibel instability is responsible for generating and amplifying highly nonuniform, small‐scale magnetic fields. These fields contribute to the electron’s transverse deflection behind the jet head. The resulting “jitter” radiation from deflected electrons has different properties compared to synchrotron radiation, which assumes a uniform magnetic field. Jitter radiation may be important for understanding the complex time evolution and/or spectra in gamma‐ray bursts, relativistic jets in general, and supernova remnants.

Key concepts: Physics, Weibel instability, Astrophysical jet, Particle acceleration, Astrophysics, Relativistic particle, Gamma-ray burst, Relativistic beaming

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