Authors
Luca Orusa, Lorenzo Sironi
Published in
Physical review letters. Volume 137. Issue 2. Pages 025201. Jul 10, 2026.
Abstract
The observation of filamentary x-ray structures near bow-shock pulsar wind nebulae (PWNe)-such as the Guitar, Lighthouse, and PSR J2030+4415 nebulae-and of slow-diffusion regions around pulsars like Geminga, Monogem, and PSR J0622+3749, challenges the standard picture of cosmic-ray transport in the interstellar medium, implying a diffusion coefficient 2 orders of magnitude smaller than the Galactic average. The suppressed diffusion can be attributed to self-generated magnetic turbulence driven, via the nonresonant streaming instability, by electron-positron pairs escaping the PWNe. This instability requires a net current, yet the beam of escaping pairs is expected to be charge neutral. We show that a charge-neutral pair beam propagating through an electron-proton plasma can spontaneously generate a net current. Using fully kinetic two-dimensional particle-in-cell simulations with realistic mass ratios, we find that beam electrons get focused into self-generated magnetic filaments produced by the nonlinear evolution of the Weibel instability, while beam positrons remain unconfined. We show that in three-dimensional simulations, the resulting net (positron) current drives the nonresonant streaming instability, further amplifying the magnetic field. This mechanism provides a pathway for the onset of charge asymmetries in initially charge-neutral pair beams and for the growth of magnetic fluctuations that efficiently scatter the beam particles, with implications for the formation of x-ray filaments and, potentially, for particle self-confinement in TeV halos around PWNe.
PMID:
42503131
Bibliographic data and abstract were imported from PubMed on 26 Jul 2026.
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