What Can We Learn about Compton-thin AGN Tori from Their X-Ray Spectra?1

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We have developed a Monte Carlo code for simulation of X-ray spectra of active galactic nuclei (AGN) based on a model of a clumpy obscuring torus. Using this code, we investigate the diagnostic power of X-ray spectroscopy of obscured AGN with respect to the physical properties and orientation of the torus, namely: the average column density, \(\langle N_{\textrm{H}}\rangle\), the line-of-sight column density, \(N_{\textrm{H}}\), the abundance of iron, \(A_{\textrm{Fe}}\), the clumpiness (i.e. the average number of gas clouds along the line of sight), \(\langle N\rangle\), and the viewing angle, \(\alpha\). In this first paper of a series, we consider the Compton-thin case, where both \(\langle N_{\textrm{H}}\rangle\) and \(N_{\textrm{H}}\) do not exceed \(10^{24}\) cm\({}^{-2}\). To enable quantitative comparison of the simulated spectra, we introduce five measurable spectral characteristics: the low-energy hardness ratio (ratio of the continuum fluxes in the 7–11 keV and 2–7 keV energy bands), the high-energy hardness ratio (ratio of the continuum fluxes in the 10–100 keV and 2–10 keV energy bands), the depth of the iron K absorption edge, the equivalent width of the Fe K\(\alpha\) line, and the fraction of the Fe K\(\alpha\) flux contained in the Compton shoulder. We demonstrate that by means of X-ray spectroscopy it is possible to tightly constrain \(\langle N_{\textrm{H}}\rangle\), \(N_{\textrm{H}}\) and \(A_{\textrm{Fe}}\) in the Compton-thin regime, while there is degeneracy between clumpiness and viewing direction.

作者简介

F. Melazzini

Space Research Institute, Russian Academy of Sciences; Moscow Institute of Physics and Technology

Email: sazonov@cosmos.ru
Russia, Moscow; Russia, Dolgoprudny

S. Sazonov

Space Research Institute, Russian Academy of Sciences

编辑信件的主要联系方式.
Email: sazonov@cosmos.ru
Russia, Moscow

参考

  1. R. Antonucci, Ann. Rev. Astron. Astrophys. 31, 473 (1993).
  2. J. Buchner, M. Brightman, K. Nandra, R. Nikutta, F.E. Bauer, Astron. Astrophys. 629, A16 (2019).
  3. J. Buchner, M. Brightman, M. Balokovic, K. Wada, F.E. Bauer, K. Nandra, Astron. Astrophys. 651, A58 (2021).
  4. D. Burlon, M. Ajello, J. Greiner, A. Comastri, A. Merloni, N. Gehrels, Astrophys. J. 728, 58 (2011).
  5. C.P. Dullemond and I.M. van Bemmel, Astron. Astrophys. 436, 47 (2005).
  6. U. Feldman, Phys. Scr. 46, 202 (1992).
  7. A. Feltre, E. Hatziminaoglou, J. Fritz, A. Franceschini, MNRAS 426, 120 (2012).
  8. S. Furui, Y. Fukazawa, H. Odaka, T. Kawaguchi, M. Ohno, K. Hayashi, Astrophys. J. 818, 164 (2016).
  9. I.M. George and A.C. Fabian, MNRAS 249, 352 (1991).
  10. M. Guainazzi and S. Bianchi, MNRAS 374, 1290 (2007).
  11. R.C. Hickox and D.M. Alexander, Ann. Rev. Astron. Astrophys. 56, 625 (2018).
  12. J.S. Kaastra and R. Mewe, Astron. Astrophys. Suppl. Ser. 97, 443 (1993).
  13. Y. Liu and X. Li, Astrophys. J. 787, 52 (2014).
  14. Y. Liu and X. Li, IAU General Assembly, Meet. 29, 2249494 (2015).
  15. A. Malizia, S. Sazonov, L. Bassani, E. Pian, V. Beckmann, M. Molina, I. Mereminskiy, G. Belanger, New Astron. Rev. 90, 101545 (2020).
  16. A.G. Markowitz, M. Krumpe, R. Nikutta, MNRAS 439, 1403 (2014).
  17. A. Merloni, et al., MNRAS 437, 3550 (2014).
  18. M. Nenkova, Z. Ivezic, M. Elitzur, Astrophys. J. 570, L9 (2002).
  19. H. Netzer, Ann. Rev. Astron. Astrophys. Sov. Sci. Rev., Sect. E: Astrophys. Space Phys. Rev. 53, 365 (2015).
  20. L.A. Pozdnyakov, I.M. Sobol, R.A. Syunyaev, Sov. Sci. Rev., Sect. E: Astrophys. Space Phys. Rev. 2, 189 (1983).
  21. C. Ramos Almeida and C. Ricci, Nature Astron. 1, 679 (2017).
  22. C. Ramos Almeida, et al., Astrophys. J. 731, 92 (2011).
  23. C. Ricci, et al., Astrophys. J. 820, 5 (2016).
  24. G. Risaliti, M. Elvis, G. Fabbiano, A. Baldi, A. Zeza, Astrophys. J. 623, L93 (2005).
  25. G. Risaliti, M. Elvis, G. Fabbiano, A. Baldi, A. Zezas, M. Salvati, Astrophys. J. 659, L111 (2007).
  26. S.Y. Sazonov and M.G. Revnivtsev, Astron. Astrophys. 423, 469 (2004).
  27. S.Y. Sazonov and R.A. Sunyaev, Astrophys. J. 543, 28 (2000).
  28. S. Sazonov, M. Revnivtsev, R. Krivonos, E. Churazov, R. Sunyaev, Astron. Astrophys. 462, 57 (2007).
  29. S. Sazonov, E. Churazov, R. Krivonos, MNRAS 454, 1202 (2015).
  30. M. Stalevski, C. Ricci, Y. Ueda, P. Lira, J. Fritz, M. Baes, MNRAS 458, 2288 (2016).
  31. A.T. Steffen, A.J. Barger, L.L. Cowie, R.F. Mushotzky, Y. Yang, Astrophys. J. 596, L23 (2003).
  32. R.A. Sunyaev and E.M. Churazov, Astron. Lett. 22, 648 (1996).
  33. A. Tanimoto, Y. Ueda, H. Odaka, T. Kawaguchi, Y. Fukazawa, T. Kawamuro, Astrophys. J. 877, 95 (2019).
  34. Y. Ueda, M. Akiyama, K. Ohta, T. Miyaji, Astrophys. J. 598, 886 (2003).
  35. Y. Ueda, M. Akiyama, G. Hasinger, T. Miyaji, M.G. Watson, Astrophys. J. 786, 104 (2014).
  36. D.A. Verner and D.G. Yakovlev, Astron. Astrophys. Suppl. Ser. 109, 125 (1995).
  37. D.A. Verner, G.J. Ferland, K.T. Korista, D.G. Yakovlev, Astrophys. J. 465, 487 (1996).

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