Yayınlanmış 1 Ocak 2023 | Sürüm v1
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Multiwavelength study of TeV blazar 1ES 1218+304 using gamma-ray, X-ray and optical observations

  • 1. Univ Hong Kong, Lab Space Res, 405B Cyberport 4,100 Cyberport Rd, Hong Kong, Peoples R China
  • 2. Polish Acad Sci, Ctr Theoret Phys, Al Lotnikow 32-46, PL-02668 Warsaw, Poland
  • 3. Presidency Univ, Sch Astrophys, Kolkata 700073, India
  • 4. Saha Inst Nucl Phys, Kolkata 700064, West Bengal, India
  • 5. Ataturk Univ, Fac Sci, Dept Astron & Space Sci, TR-25240 Erzurum, Turkiye
  • 6. North West Univ, Ctr Space Res, ZA-2520 Potchefstroom, South Africa
  • 7. Istanbul Univ, Fac Sci, Dept Astron & Space Sci, TR-34116 Istanbul, Turkiye

Açıklama

We report on a multiwavelength study of the high-synchrotron-peaked BL Lac 1ES 1218+304 using near-simultaneous data obtained during the period from 2018 January 1 to 2021 May 31 (MJD 58119-59365) from various instruments, including Fermi-LAT, Swift-XRT, AstroSat, and optical data from Swift-UVOT and the TUBITAK observatory in Turkey. The source was reported to be flaring in the TeV & gamma;-ray band during 2019, but no significant variation was observed with Fermi-LAT. A sub-hour variability is seen in the SXT light curve, suggesting a compact emission region for the variability. However, hour-scale variability is observed in the & gamma;-ray light curve. A 'softer-when-brighter' trend is observed in the & gamma;-ray, and an opposite trend is seen in the X-ray, suggesting that the two emissions are produced through two different processes, as expected from a high-frequency-peaked BL Lac source. We have chosen the two epochs in 2019 January to study and compare their physical parameters. A joint fit of SXT and LAXPC provides a constraint on the synchrotron peak, estimated to be & SIM;1.6 keV. A clear shift in the synchrotron peak is observed from & SIM;1 keV to above 10 keV, revealing its extreme nature or behaviour like an extreme blazar-type source. The optical observation provides a colour-index variation as 'blue-when-brighter'. The broad-band spectral energy distribution is fitted with a single-zone synchrotron-self Compton model, and their parameters are discussed in the context of a TeV blazar and the possible mechanism behind the broad-band emission.

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