English

Hard Synchrotron Spectra from Magnetically Dominated Plasma Turbulence

High Energy Astrophysical Phenomena 2020-06-04 v2 Solar and Stellar Astrophysics Plasma Physics

Abstract

Synchrotron emission from astrophysical nonthermal sources usually assumes that the emitting particles are isotropic. By means of large-scale two- and three-dimensional particle-in-cell simulations, we demonstrate that the dissipation of magnetically-dominated (σ01\sigma_0\gg1) turbulence in pair plasmas leads to strongly anisotropic particle distributions. At Lorentz factors σ0γth0\sim \sigma_0 \gamma_{th0} (here, γth0\gamma_{th0} is the initial Lorentz factor), the particle velocity is preferentially aligned with the local magnetic field; instead, the highest energy particles are roughly isotropic. This energy-dependent anisotropy leads to a synchrotron spectral flux νFννs\nu F_\nu\propto \nu^s that is much harder than for isotropic particles. Remarkably, for σ01\sigma_0\gg1 we find that the solid-angle-averaged spectral slope in the slow cooling regime is s0.50.7s\sim 0.5-0.7 for a wide range of turbulence fluctuations, 0.25δBrms02/B0240.25\lesssim \delta B_{\rm rms0}^2/B_0^2\lesssim 4, despite significant variations in the power-law energy spectrum of nonthermal particles. This is because weaker turbulence levels imprint a stronger degree of anisotropy, thereby counteracting the effect of the steeper particle spectrum. The synchrotron spectral slope may be even harder, s0.7s\gtrsim 0.7, if the observer is in the plane perpendicular to the mean magnetic field. Our results are independent of domain size and dimensionality. Our findings may help explaining the origin of hard synchrotron spectra of astrophysical nonthermal sources, most notably the radio spectrum of Pulsar Wind Nebulae.

Keywords

Cite

@article{arxiv.2004.07315,
  title  = {Hard Synchrotron Spectra from Magnetically Dominated Plasma Turbulence},
  author = {Luca Comisso and Emanuele Sobacchi and Lorenzo Sironi},
  journal= {arXiv preprint arXiv:2004.07315},
  year   = {2020}
}

Comments

Accepted for publication in The Astrophysical Journal Letters

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