More than meets the eye: magnetars in disguise
arXiv:1208.1297 · doi:10.1093/mnras/sts317
Abstract
It has recently been proposed that radio emission from magnetars can be evaluated using a "fundamental plane" in parameter space between pulsar voltage gap and ratio of X-ray luminosity Lx to rotational energy loss rate Edot. In particular, radio emission from magnetars will occur if Lx/Edot<1 and the voltage gap is large, and there is no radio emission if Lx/Edot>1. Here we clarify several issues regarding this fundamental plane, including demonstrating that the fundamental plane is not uniquely defined. We also show that, if magnetars and all other pulsars are different manifestations of a unified picture of neutron stars, then pulsar radio activity (inactivity) appears to be determined by the ratio Lx/Edot<1 (Lx/Edot>1), although observational bias and uncertainty in the ratio for some sources may still invalidate this conclusion. Finally, we comment on the use of other pulsar parameters that are constructed from the three observables: spin period P, period derivative Pdot, and Lx.
6 pages, 3 figures; to appear in MNRAS; added notes on magnetar differences in radio and recent works on magnetospheres
References in corpus (14)
- The ATNF Pulsar Catalogue
- The strongest cosmic magnets: Soft Gamma-ray Repeaters and Anomalous X-ray Pulsars
- Corona of Magnetars
- Distances to Anomalous X-ray Pulsars using Red Clump Stars
- The Compact X-ray Source 1E 1547.0-5408 and the Radio Shell G327.24-0.13: A New Proposed Association between a Candidate Magnetar and a Candidate Supernova Remnant
- Evidence for Heating of Neutron Stars by Magnetic Field Decay
- Exciting the Magnetosphere of the Magnetar CXOU J164710.2-455216 in Westerlund 1
- Rotational evolution of young pulsars due to superfluid decoupling
- The 2008 May burst activation of SGR 1627-41
- Magnetars as cooling neutron stars with internal heating
- From outburst to quiescence: the decay of the transient Anomalous X-ray Pulsar XTE J1810-197
- Heating and cooling of magnetars with accreted envelopes
- Very deep X-ray observations of the Anomalous X-ray Pulsar 4U 0142+614
- Chandra Observations of the High-Magnetic-Field Radio Pulsar J1718-3718