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Magnetospheric Eclipses in the Binary Pulsar J0737-3039

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arxiv astro-ph/0502333 v2 pith:5GH4GWPL submitted 2005-02-17 astro-ph

classification astro-ph
keywords pulsareclipsefieldmagneticmodelradioabsorptionbinary
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(Abridged) In the binary radio pulsar system J0737-3039, the faster pulsar A is eclipsed once per orbit. We construct a simple geometric model which successfully reproduces the eclipse light curves, based on the idea that the radio pulses are attenuated by synchrotron absorption on the closed magnetic field lines of pulsar B. The model explains most of the properties of the eclipse: its asymmetric form, the nearly frequency-independent duration, and the modulation of the brightness of pulsar A at both once and twice the rotation frequency of pulsar B in different parts of the eclipse. This detailed agreement confirms the dipolar structure of the star's poloidal magnetic field. The model makes clear predictions for the degree of linear polarization of the transmitted radiation. The weak frequency dependence of the eclipse duration implies that the absorbing plasma is relativistic, with a density much larger than the corotation charge density. Such hot, dense plasma can be effectively stored in the outer magnetosphere, where cyclotron cooling is slow. The gradual loss of particles inward through the cooling radius is compensated by an upward flux driven by a fluctuating component of the current, and by the pumping of magnetic helicity on the closed field lines. The trapped particles are heated to relativistic energies by the damping of magnetospheric turbulence and, at a slower rate, by the absorption of the radio emission of the companion pulsar.

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Cited by 2 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. OpenAlex reports about 82 citations worldwide. Full citation record

  1. Relativistic van Allen belts in magnetospheres of pulsars and white dwarfs

    astro-ph.HE 2025-06 conditional novelty 6.0 of 10

    Relativistic particles trapped in a star's dipole magnetosphere with synchrotron losses fall into three classes (oscillating, freezing, precipitating), producing distinctive optical and X-ray emission maps.

  2. Understanding Pulsar Wind Nebulae with the SKA

    astro-ph.HE 2026-06 unverdicted novelty 2.0 of 10

    SKA will enable spatially resolved radio studies of pulsar wind nebulae to probe particle acceleration and propagation in ultra-relativistic outflows.

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