Electrodynamics of axisymmetric pulsar magnetosphere with electron-positron discharge: a numerical experiment
Alexander Y. Chen, Andrei M. Beloborodov (Columbia University)

TL;DR
This paper presents the first self-consistent global simulations of pulsar magnetospheres with electron-positron discharge, revealing how plasma flows, gaps, and emissions depend on pair creation regions and aligning with gamma-ray observations.
Contribution
It introduces a novel particle-in-cell simulation approach to model pulsar magnetospheres with active pair discharge, exploring different pair creation scenarios and their effects.
Findings
Magnetospheres with pair creation up to the light cylinder resemble force-free solutions.
Powerful curvature and synchrotron emission observed from the current sheet.
Pulsars with only near-star pair creation tend to become inactive or 'dead'.
Abstract
We present the first self-consistent global simulations of pulsar magnetospheres with operating discharge. We focus on the simple configuration of an aligned or anti-aligned rotator. The star is spun up from zero (vacuum) state to a high angular velocity, and we follow the coupled evolution of its external electromagnetic field and plasma particles using the "particle-in-cell" method. A plasma magnetosphere begins to form through the extraction of particles from the star; these particles are accelerated by the rotation-induced electric field, producing curvature radiation and igniting discharge. We follow the system evolution for several revolution periods, longer than required to reach a quasi-steady state. Our numerical experiment puts to test previous ideas for the plasma flow and gaps in the pulsar magnetosphere. We first consider rotators capable of producing pairs…
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