Does Pulsar B1757--24 Have a Fallback Disk?
arXiv:astro-ph/0008300 · doi:10.1086/318881
Abstract
Radio pulsars are thought to spin-down primarily due to torque from magnetic dipole radiation (MDR) emitted by the time-varying stellar magnetic field as the star rotates. This assumption yields a `characteristic age' for a pulsar which has generally been assumed to be comparable to the actual age. Recent observational limits on the proper motion of pulsar B1757-24, however, revealed that the actual age (>39 kyr) of this pulsar is much greater than its MDR characteristic age (16 kyr) - calling into question the assumption of pure MDR spin-down for this and other pulsars. To explore the possible cause of this discrepancy, we consider a scenario in which the pulsar acquired an accretion disk from supernova ejecta, and the subsequent spin-down occurred under the combined action of MDR and accretion torques. A simplified model of the accretion torque involving a constant mass inflow rate at the pulsar magnetosphere can explain the age and period derivative of the pulsar for reasonable values of the pulsar magnetic field and inflow rate. We discuss testable predictions of this model.
Accepted by ApJ Letters. 15 pages with 1 figure
References in corpus (3)
Cited by in corpus (26)
- On Young Neutron Stars as Propellers and Accretors with Conventional Magnetic Fields
- Chandra Observations of G11.2-0.3: Implications for Pulsar Ages
- The fate of fallback matter around newly born compact objects
- Stability and Evolution of Supernova Fallback Disks
- Accretion-Assisted Spindown of Young Radio Pulsars
- X-ray Detection of Pulsar PSR B1757-24 and its Nebular Tail
- The spin evolution of nascent neutron stars
- On the Nature of Part Time Radio Pulsars
- Pulsar Spindown by a Fall-Back Disk and the P-P_dot Diagram
- Where Are All The Fallback Disks? Constraints on Propeller Systems
- The Compact Central Object in the Supernova Remnant G266.2-1.2
- Variations in the spin period of the radio-quiet pulsar 1E 1207.4-5209
- Disks Surviving the Radiation Pressure of Radio Pulsars
- The Nature of the Compact X-ray Source in Supernova Remnant RCW 103
- The braking indices in pulsar emission models
- The State of pulsar theory
- Pulsars With Jets May Harbor Dynamically Important Accretion Disks
- Radio pulsars as progenitors of AXPs and SGRs: magnetic field evolution through pulsar glitches
- Population synthesis of young isolated neutron stars: the effect of fallback disk accretion and magnetic field evolution
- The Duck Redux: An Improved Proper Motion Upper Limit for the Pulsar B1757-24 Near the Supernova Remnant G5.4-1.2
- The influence of fallback discs on the spectral and timing properties of neutron stars
- Can the age discrepancies of neutron stars be circumvented by an accretion-assisted torque?
- The Vela Pulsar With an Active Fallback Disk
- Are Supershells Powered by Multiple Supernovae? Modeling the Radio Pulsar Population Produced by OB Associations
- Unifying neutron star sub-populations in the supernova fallback accretion model
- Non-LTE modeling of supernova-fallback disks