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Particle Acceleration in Relativistic Jets Due to Weibel Instability

Authors :
Nishikawa, K.-I
Hardee, P
Richardson, G
Preece, R
Sol, H
Fishman, G. J
Source :
Astrophysical Journal. 595
Publication Year :
2004
Publisher :
United States: NASA Center for Aerospace Information (CASI), 2004.

Abstract

Shock acceleration is a ubiquitous phenomenon in astrophysical plasmas. Plasma waves and their associated instabilities (e.g., the Buneman instability, two-streaming instability, and the Weibel instability) created in the shocks are responsible for particle (electron, positron, and ion) acceleration. Using a three-dimensional relativistic electromagnetic particle code, we have investigated particle acceleration associated with a relativistic jet front propagating through an ambient plasma with and without initial magnetic fields. We find only small differences in the results between no ambient and weak ambient magnetic fields. Simulations show that the Weibel instability created in the collisionless shock front accelerates particles perpendicular and parallel to the jet propagation direction. While some Fermi acceleration may occur at the jet front, the majority of electron acceleration takes place behind the jet front and cannot be characterized as Fermi acceleration. The simulation results show that this instability is responsible for generating and amplifying highly nonuniform, small-scale magnetic fields, which contribute to the electron s transverse deflection behind the jet head. The "jitter" radiation from deflected electrons has different properties than synchrotron radiation which is calculated in a uniform magnetic field. This jitter radiation may be important to understanding the complex time evolution and/or spectral structure in gamma-ray bursts, relativistic jets, and supernova remnants.

Subjects

Subjects :
Plasma Physics

Details

Language :
English
Volume :
595
Database :
NASA Technical Reports
Journal :
Astrophysical Journal
Notes :
NSF ATM-97-30230, , NSF INT-99-81508, , NSF ATM-01-00997, , NSF ATM-98-70072
Publication Type :
Report
Accession number :
edsnas.20040084063
Document Type :
Report
Full Text :
https://doi.org/10.1086/377260