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http://dx.doi.org/10.5140/JASS.2016.33.2.75

Probing Gamma-ray Emission of Geminga and Vela with Non-stationary Models  

Chai, Yating (The University of Hong Kong)
Cheng, Kwong-Sang (The University of Hong Kong)
Takata, Jumpei (Huazhong University of Science and Technology)
Publication Information
Journal of Astronomy and Space Sciences / v.33, no.2, 2016 , pp. 75-92 More about this Journal
Abstract
It is generally believed that the high energy emissions from isolated pulsars are emitted from relativistic electrons/positrons accelerated in outer magnetospheric accelerators (outergaps) via a curvature radiation mechanism, which has a simple exponential cut-off spectrum. However, many gamma-ray pulsars detected by the Fermi LAT (Large Area Telescope) cannot be fitted by simple exponential cut-off spectrum, and instead a sub-exponential is more appropriate. It is proposed that the realistic outergaps are non-stationary, and that the observed spectrum is a superposition of different stationary states that are controlled by the currents injected from the inner and outer boundaries. The Vela and Geminga pulsars have the largest fluxes among all targets observed, which allows us to carry out very detailed phase-resolved spectral analysis. We have divided the Vela and Geminga pulsars into 19 (the off pulse of Vela was not included) and 33 phase bins, respectively. We find that most phase resolved spectra still cannot be fitted by a simple exponential spectrum: in fact, a sub-exponential spectrum is necessary. We conclude that non-stationary states exist even down to the very fine phase bins.
Keywords
Vela; Geminga; superposition model;
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