English

NGC 1365: A low column density state unveiling a low ionization disk wind

High Energy Astrophysical Phenomena 2015-06-22 v1

Abstract

We present the time-resolved spectral analysis of the XMM-Newton data of NGC 1365, collected during one XMM-Newton observation, which caught this "changing-look" AGN in a high flux state characterized also by a low column density (NH1022N_{\mathrm{H}}\sim 10^{22} cm 2^{-2}) of the X-ray absorber. During this observation the low energy photoelectric cut-off is at about 1\sim 1 keV and the primary continuum can be investigated with the XMM-Newton-RGS data, which show strong spectral variability that can be explained as a variable low NHN_{\mathrm{H}}, which decreased from NH1023N_{\mathrm{H}} \sim10^{23} cm 2^{-2} to 102210^{22} cm 2^{-2} in a 100 ks time-scale. The spectral analysis of the last segment of the observation revealed the presence of several absorption features that can be associated with an ionized (log ξ2\xi \sim 2 erg cm s1^{-1}) outflowing wind (vout2000v_{\mathrm{out}} \sim 2000 km s1^{-1}). We detected for the first time a possible P-Cygni profile of the Mg\,\textsc{xii} Lyα\alpha line associated with this mildly ionized absorber indicative of a wide angle outflowing wind. We suggest that this wind is a low ionization zone of the highly ionized wind present in NGC 1365, which is responsible for the iron K absorption lines and is located within the variable X-ray absorber. At the end of the observation, we detected a strong absorption line at E0.76E\sim 0.76 keV most likely associated with a lower ionization zone of the absorber (log ξ0.2\xi \sim 0.2 erg cm s1^{-1}, NH1022N_{\mathrm{H}} \sim 10^{22} cm 2^{-2}), which suggests that the variable absorber in NGC 1365 could be a low ionization zone of the disk wind.

Keywords

Cite

@article{arxiv.1409.3390,
  title  = {NGC 1365: A low column density state unveiling a low ionization disk wind},
  author = {V. Braito and J. N. Reeves and J. Gofford and E. Nardini and D. Porquet and G. Risaliti},
  journal= {arXiv preprint arXiv:1409.3390},
  year   = {2015}
}

Comments

39 pages, 8 figures, 7 tables. Accepted for publication in the ApJ

R2 v1 2026-06-22T05:54:21.067Z