Turbulence and Particle Acceleration in a Relativistic Plasma

  • Vega C
  • Boldyrev S
  • Roytershteyn V
  • et al.
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Abstract

In a collisionless plasma, the energy distribution function of plasma particles can be strongly affected by turbulence. In particular, it can develop a nonthermal power-law tail at high energies. We argue that turbulence with initially relativistically strong magnetic perturbations (magnetization parameter σ ≫ 1) quickly evolves into a state with ultrarelativistic plasma temperature but mildly relativistic turbulent fluctuations. We present a phenomenological and numerical study suggesting that in this case, the exponent α in the power-law particle-energy distribution function, f ( γ ) d γ ∝ γ − α d γ , depends on magnetic compressibility of turbulence. Our analytic prediction for the scaling exponent α is in good agreement with the numerical results.

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Vega, C., Boldyrev, S., Roytershteyn, V., & Medvedev, M. (2022). Turbulence and Particle Acceleration in a Relativistic Plasma. The Astrophysical Journal Letters, 924(1), L19. https://doi.org/10.3847/2041-8213/ac441e

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