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Self-Confinement of Relativistic Pair Beams in Magnetized Interstellar Plasmas: The Case of Pulsar X-Ray Filaments.

Created on 26 Jul 2026

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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