Modeling the Multiwavelength Emission of 3C 279 during the 14 years of Fermi-LAT Era

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Hauptverfasser: A, Krishna Mohana, Gupta, Alok C., Fan, Junhui, Sahakyan, Narek, Raiteri, Claudia M., Cui, Lang, Lahteenmaki, Anne, Gurwell, Mark, Tornikoski, Merja, Villata, Massimo
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Veröffentlicht: 2025
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author A, Krishna Mohana
Gupta, Alok C.
Fan, Junhui
Sahakyan, Narek
Raiteri, Claudia M.
Cui, Lang
Lahteenmaki, Anne
Gurwell, Mark
Tornikoski, Merja
Villata, Massimo
author_facet A, Krishna Mohana
Gupta, Alok C.
Fan, Junhui
Sahakyan, Narek
Raiteri, Claudia M.
Cui, Lang
Lahteenmaki, Anne
Gurwell, Mark
Tornikoski, Merja
Villata, Massimo
contents We report the results of our long-term multiwavelength spectral energy distribution (SED) study on the flat spectrum radio quasar 3C 279 during the $\sim14$ years (2008--2022) of {\sl Fermi}-LAT (Large Area Telescope) observing period. The {\sl Fermi}-LAT data were complemented with data in other wavebands obtained from {\sl Swift}-XRT/UVOT, Whole Earth Blazar Telescope (WEBT), along with other optical and radio data from several observatories. Different activity states were identified from the weekly binned $γ$-ray light curve, and it was possible to create 168 high-quality and quasi-simultaneous broadband SEDs. We modeled the SEDs using a one-zone leptonic scenario, including the emission region outside the broad-line region (BLR), involving synchrotron, synchrotron self-Compton, and external Compton mechanisms. Such extensive broadband modeling is essential for constraining the underlying multiwavelength radiative mechanisms in the 3C 279 jet and permits to estimate the physical parameters and explore their evolution in time. Our SED modeling study suggests that the increase in the Doppler beaming factor along with the variation of the emitting electrons is the cause for the flares in this source. The multiwavelength emission of 3C 279 was found to be well explained by the scenario in which the emission region is outside the BLR at a distance of $\sim6.42\times10^{3} R_S$. However, for two of the very bright $γ$-ray states, the emission region was found to be close to the outer boundary of the BLR at a distance of $\sim1.28\times10^{3} R_S$ from the central black hole.
format Preprint
id arxiv_https___arxiv_org_abs_2507_03913
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Modeling the Multiwavelength Emission of 3C 279 during the 14 years of Fermi-LAT Era
A, Krishna Mohana
Gupta, Alok C.
Fan, Junhui
Sahakyan, Narek
Raiteri, Claudia M.
Cui, Lang
Lahteenmaki, Anne
Gurwell, Mark
Tornikoski, Merja
Villata, Massimo
High Energy Astrophysical Phenomena
We report the results of our long-term multiwavelength spectral energy distribution (SED) study on the flat spectrum radio quasar 3C 279 during the $\sim14$ years (2008--2022) of {\sl Fermi}-LAT (Large Area Telescope) observing period. The {\sl Fermi}-LAT data were complemented with data in other wavebands obtained from {\sl Swift}-XRT/UVOT, Whole Earth Blazar Telescope (WEBT), along with other optical and radio data from several observatories. Different activity states were identified from the weekly binned $γ$-ray light curve, and it was possible to create 168 high-quality and quasi-simultaneous broadband SEDs. We modeled the SEDs using a one-zone leptonic scenario, including the emission region outside the broad-line region (BLR), involving synchrotron, synchrotron self-Compton, and external Compton mechanisms. Such extensive broadband modeling is essential for constraining the underlying multiwavelength radiative mechanisms in the 3C 279 jet and permits to estimate the physical parameters and explore their evolution in time. Our SED modeling study suggests that the increase in the Doppler beaming factor along with the variation of the emitting electrons is the cause for the flares in this source. The multiwavelength emission of 3C 279 was found to be well explained by the scenario in which the emission region is outside the BLR at a distance of $\sim6.42\times10^{3} R_S$. However, for two of the very bright $γ$-ray states, the emission region was found to be close to the outer boundary of the BLR at a distance of $\sim1.28\times10^{3} R_S$ from the central black hole.
title Modeling the Multiwavelength Emission of 3C 279 during the 14 years of Fermi-LAT Era
topic High Energy Astrophysical Phenomena
url https://arxiv.org/abs/2507.03913