English

High-energy pulsar light curves in an offset polar cap $B$-field geometry

High Energy Astrophysical Phenomena 2017-02-20 v1

Abstract

The light curves and spectral properties of more than 200 γ\gamma-ray pulsars have been measured in unsurpassed detail in the eight years since the launch of the hugely successful Fermi Large Area Telescope (LAT) γ\gamma-ray mission. We performed geometric pulsar light curve modelling using static, retarded vacuum, and offset polar cap (PC) dipole BB-fields (the latter is characterized by a parameter ϵ\epsilon), in conjunction with standard two-pole caustic (TPC) and outer gap (OG) emission geometries. In addition to constant-emissivity geometric models, we also considered a slot gap (SG) EE-field associated with the offset-PC dipole BB-field and found that its inclusion leads to qualitatively different light curves. We therefore find that the assumed BB-field and especially the EE-field structure, as well as the emission geometry (magnetic inclination and observer angles), have a great impact on the pulsar's visibility and its high-energy pulse shape. We compared our model light curves to the superior-quality γ\gamma-ray light curve of the Vela pulsar (for energies >100>100 MeV). Our overall optimal light curve fit (with the lowest χ2\chi^2 value) is for the retarded vacuum dipole field and OG model. We found that smaller values of ϵ\epsilon are favoured for the offset-PC dipole field when assuming constant emissivity, and larger ϵ\epsilon values are favoured for variable emissivity, but not significantly so. When we increased the relatively low SG EE-fields we found improved light curve fits, with the inferred pulsar geometry being closer to best fits from independent studies in this case. In particular, we found that such a larger SG EE-field (leading to variable emissivity) gives a second overall best fit. This and other indications point to the fact that the actual EE-field may be larger than predicted by the SG model.

Keywords

Cite

@article{arxiv.1702.05236,
  title  = {High-energy pulsar light curves in an offset polar cap $B$-field geometry},
  author = {Monica Barnard and Christo Venter and Alice K. Harding},
  journal= {arXiv preprint arXiv:1702.05236},
  year   = {2017}
}

Comments

13 pages, 5 figures, paper to appear in the Proceedings of High-Energy Astrophysics in Southern Africa (HEASA) 2016, ed. M. Boettcher, D. Buckley, S. Colafrancesco, P. Meintjes, and S. Razzaque