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The relativistic jet of Cygnus X-3 in gamma rays
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High energy gamma-rays have been detected from Cygnus X-3, a system composed of a Wolf-Rayet star and a black hole or neutron star. The gamma-ray emission is linked to the radio emission from the jet launched in the system. The flux is modulated with the 4.8 hr orbital period, as expected if high energy electrons are upscattering photons emitted by the Wolf-Rayet star to gamma-ray energies. This modulation is computed assuming that high energy electrons are located at some distance along a relativistic jet of arbitrary orientation. Modeling shows that the jet must be inclined and that the gamma ray emitting electrons cannot be located within the system. This is consistent with the idea that the electrons gain energy where the jet is recollimated by the stellar wind pressure and forms a shock. Jet precession should strongly affect the gamma-ray modulation shape at different epochs. The power in non-thermal electrons represents a small fraction of the Eddington luminosity only if the inclination is low i.e. if the compact object is a black hole.
Forward citations
Cited by 2 Pith papers
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Cygnus X-3: A variable petaelectronvolt gamma-ray source
Cygnus X-3 produces variable gamma rays up to 3.7 PeV, consistent with photomeson production in its relativistic jet requiring protons accelerated to tens of PeV.
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Cygnus X-3 as a PeVatron and the LHAASO 2025 data
The PeV gamma-ray signal from Cygnus X-3 can be roughly reproduced by a hadronic jet model in which protons scatter on gas and stellar UV photons, with enhanced wind absorption steepening the sub-PeV spectrum.
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