XMM-Newton observation of the nearby pulsar B1133+16
arXiv:1701.02554 · doi:10.3847/1538-4357/835/2/178
Abstract
We constrain the X-ray properties of the nearby , old () pulsar B1133+16 with effective exposure time by {\it XMM-Newton}. The observed pulsar flux in the 0.2-3 keV energy range is , which results in the recording of source counts with the EPIC pn and MOS detectors. The X-ray radiation is dominated by nonthermal radiation and is well described by both a single power-law model (PL) and a sum of blackbody and power-law emission (BB+PL). The BB+PL model results in a spectral photon index and a nonthermal flux in the 0.2-3 keV energy range of . The thermal emission is consistent with the blackbody emission from a small hot spot with a radius of and a temperature of . Assuming that the hot spot corresponds to the polar cap of the pulsar, we can use the magnetic flux conservation law to estimate the magnetic field at the surface . The observations are in good agreement with the predictions of the partially screened gap model, which assumes the existence of small-scale surface magnetic field structures in the polar cap region.
10 pages, 8 figuers, accepted for publication in ApJ
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