Polarized Emission of Intrabinary Shocks in Spider Pulsars from Global 3D Kinetic Simulations

Fuente: arXiv
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Main Authors: Sullivan, Andrew G., Cortés, Jorge, Sironi, Lorenzo
Format: Preprint
Published: 2025
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author Sullivan, Andrew G.
Cortés, Jorge
Sironi, Lorenzo
author_facet Sullivan, Andrew G.
Cortés, Jorge
Sironi, Lorenzo
contents In spider pulsar systems, a relativistic intrabinary shock forms when the pulsar wind collides with the massive outflow driven off the pulsar's low-mass stellar companion. The shock is a site of non-thermal particle acceleration, likely via shock-driven magnetic reconnection, and produces synchrotron emission. These shocks are among the few systems in which global scales can be reasonably captured with kinetic simulations, enabling first-principles particle acceleration and emission studies. We perform the first global 3D kinetic simulations of spider pulsar intrabinary shocks and predict their polarized emission properties. We report emission spectra, light curves, and polarization patterns as a function of the stripe-averaged magnetic field, cooling strength, and viewing inclination. At $90^\circ$ inclination and for a low stripe-averaged magnetic field, we reproduce the double peaked light curve observed in spider systems. We predict a significant polarization degree $\gtrsim15\%$, which monotonically increases with the stripe-averaged field strength. Our results can be applied to and tested by forthcoming X-ray polarization observations of spider pulsars.
format Preprint
id arxiv_https___arxiv_org_abs_2508_11625
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Polarized Emission of Intrabinary Shocks in Spider Pulsars from Global 3D Kinetic Simulations
Sullivan, Andrew G.
Cortés, Jorge
Sironi, Lorenzo
High Energy Astrophysical Phenomena
Plasma Physics
In spider pulsar systems, a relativistic intrabinary shock forms when the pulsar wind collides with the massive outflow driven off the pulsar's low-mass stellar companion. The shock is a site of non-thermal particle acceleration, likely via shock-driven magnetic reconnection, and produces synchrotron emission. These shocks are among the few systems in which global scales can be reasonably captured with kinetic simulations, enabling first-principles particle acceleration and emission studies. We perform the first global 3D kinetic simulations of spider pulsar intrabinary shocks and predict their polarized emission properties. We report emission spectra, light curves, and polarization patterns as a function of the stripe-averaged magnetic field, cooling strength, and viewing inclination. At $90^\circ$ inclination and for a low stripe-averaged magnetic field, we reproduce the double peaked light curve observed in spider systems. We predict a significant polarization degree $\gtrsim15\%$, which monotonically increases with the stripe-averaged field strength. Our results can be applied to and tested by forthcoming X-ray polarization observations of spider pulsars.
title Polarized Emission of Intrabinary Shocks in Spider Pulsars from Global 3D Kinetic Simulations
topic High Energy Astrophysical Phenomena
Plasma Physics
url https://arxiv.org/abs/2508.11625