The Gamma-Ray Pulsar Phenomenology in View of 3D Kinetic Global Magnetosphere Models

We develop kinetic plasma models of pulsar magnetospheres with magnetic-field-line-dependent plasma injection that reveal the importance of various magnetosphere regions in regulating the γ -ray emission. We set different particle injection rates for the so-called open, closed, and separatrix zones....

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Main Authors: Constantinos Kalapotharakos, Zorawar Wadiasingh, Alice K. Harding, Demosthenes Kazanas
Format: Article
Language:English
Published: IOP Publishing 2023-01-01
Series:The Astrophysical Journal
Subjects:
Online Access:https://doi.org/10.3847/1538-4357/ace972
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author Constantinos Kalapotharakos
Zorawar Wadiasingh
Alice K. Harding
Demosthenes Kazanas
author_facet Constantinos Kalapotharakos
Zorawar Wadiasingh
Alice K. Harding
Demosthenes Kazanas
author_sort Constantinos Kalapotharakos
collection DOAJ
description We develop kinetic plasma models of pulsar magnetospheres with magnetic-field-line-dependent plasma injection that reveal the importance of various magnetosphere regions in regulating the γ -ray emission. We set different particle injection rates for the so-called open, closed, and separatrix zones. Moderate particle injection rates in open and closed zones ensure a global field structure close to the force-free structure, while the dissipation occurs mainly in and around the equatorial current sheet. The particles that are injected into the separatrix zone affect the particle populations that enter the equatorial current sheet region, and therefore the corresponding accelerating electric fields, particle energies, the spectral cutoff energy, and γ -ray efficiency. The separatrix zone models reproduce the recently discovered fundamental plane of γ -ray pulsars consistent with curvature radiation emission, the γ -ray light-curve shapes, and the radio-lag versus peak-separation correlation reported in the Fermi second pulsar catalog. The model beaming factors indicate that the pulsar total γ -ray luminosities listed in the Fermi catalogs are overestimations of the actual ones. We find that the radiation reaction limited regime starts ceasing to govern the high-energy emission for $\dot{{ \mathcal E }}\lesssim {10}^{34}\,\mathrm{erg}\,\,{{\rm{s}}}^{-1}$ . Our results also indicate that toward high magnetic inclination angles, the Y point around the rotational equator migrates well inside the light cylinder, sparking additional peaks in the γ -ray pulse profiles. We find that an equivalent enhanced particle injection beyond the Y point strengthens these features, making the model γ -ray light curves inconsistent with those observed.
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spelling doaj.art-f000561f359a404fa3c3aee955e58b1e2023-09-07T09:12:27ZengIOP PublishingThe Astrophysical Journal1538-43572023-01-01954220410.3847/1538-4357/ace972The Gamma-Ray Pulsar Phenomenology in View of 3D Kinetic Global Magnetosphere ModelsConstantinos Kalapotharakos0https://orcid.org/0000-0003-1080-5286Zorawar Wadiasingh1https://orcid.org/0000-0002-9249-0515Alice K. Harding2https://orcid.org/0000-0001-6119-859XDemosthenes Kazanas3https://orcid.org/0000-0002-7435-7809University of Maryland , College Park (UMCP/CRESST II) College Park, MD 20742, USA ; constantinos.kalapotharakos@nasa.gov, ckalapotharakos@gmail.com; Astrophysics Science Division, NASA/Goddard Space Flight Center Greenbelt , MD 20771, USAUniversity of Maryland , College Park (UMCP/CRESST II) College Park, MD 20742, USA ; constantinos.kalapotharakos@nasa.gov, ckalapotharakos@gmail.com; Astrophysics Science Division, NASA/Goddard Space Flight Center Greenbelt , MD 20771, USATheoretical Division, Los Alamos National Laboratory Los Alamos , NM 87545, USAAstrophysics Science Division, NASA/Goddard Space Flight Center Greenbelt , MD 20771, USAWe develop kinetic plasma models of pulsar magnetospheres with magnetic-field-line-dependent plasma injection that reveal the importance of various magnetosphere regions in regulating the γ -ray emission. We set different particle injection rates for the so-called open, closed, and separatrix zones. Moderate particle injection rates in open and closed zones ensure a global field structure close to the force-free structure, while the dissipation occurs mainly in and around the equatorial current sheet. The particles that are injected into the separatrix zone affect the particle populations that enter the equatorial current sheet region, and therefore the corresponding accelerating electric fields, particle energies, the spectral cutoff energy, and γ -ray efficiency. The separatrix zone models reproduce the recently discovered fundamental plane of γ -ray pulsars consistent with curvature radiation emission, the γ -ray light-curve shapes, and the radio-lag versus peak-separation correlation reported in the Fermi second pulsar catalog. The model beaming factors indicate that the pulsar total γ -ray luminosities listed in the Fermi catalogs are overestimations of the actual ones. We find that the radiation reaction limited regime starts ceasing to govern the high-energy emission for $\dot{{ \mathcal E }}\lesssim {10}^{34}\,\mathrm{erg}\,\,{{\rm{s}}}^{-1}$ . Our results also indicate that toward high magnetic inclination angles, the Y point around the rotational equator migrates well inside the light cylinder, sparking additional peaks in the γ -ray pulse profiles. We find that an equivalent enhanced particle injection beyond the Y point strengthens these features, making the model γ -ray light curves inconsistent with those observed.https://doi.org/10.3847/1538-4357/ace972PulsarsGamma-raysGamma-ray telescopesComputational methodsNeutron stars
spellingShingle Constantinos Kalapotharakos
Zorawar Wadiasingh
Alice K. Harding
Demosthenes Kazanas
The Gamma-Ray Pulsar Phenomenology in View of 3D Kinetic Global Magnetosphere Models
The Astrophysical Journal
Pulsars
Gamma-rays
Gamma-ray telescopes
Computational methods
Neutron stars
title The Gamma-Ray Pulsar Phenomenology in View of 3D Kinetic Global Magnetosphere Models
title_full The Gamma-Ray Pulsar Phenomenology in View of 3D Kinetic Global Magnetosphere Models
title_fullStr The Gamma-Ray Pulsar Phenomenology in View of 3D Kinetic Global Magnetosphere Models
title_full_unstemmed The Gamma-Ray Pulsar Phenomenology in View of 3D Kinetic Global Magnetosphere Models
title_short The Gamma-Ray Pulsar Phenomenology in View of 3D Kinetic Global Magnetosphere Models
title_sort gamma ray pulsar phenomenology in view of 3d kinetic global magnetosphere models
topic Pulsars
Gamma-rays
Gamma-ray telescopes
Computational methods
Neutron stars
url https://doi.org/10.3847/1538-4357/ace972
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