The 2025 Failed Outburst of IGR J17091-3624: Spectral Evolution and the Role of Ionized Absorbers

Fuente: arXiv
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Main Authors: Adegoke, Oluwashina K., Garcia, Javier A., Mastroserio, Guglielmo, Kammoun, Elias, Connors, Riley M. T., Steiner, James F., Harrison, Fiona A., Buisson, Douglas J. K., coley, Joel B., Coughenour, Benjamin M., Dauser, Thomas, Ewing, Melissa, Ingram, Adam, Kara, Erin, Nathan, Edward, Parra, Maxime, Stern, Daniel, Tomsick, John A.
Format: Preprint
Published: 2025
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author Adegoke, Oluwashina K.
Garcia, Javier A.
Mastroserio, Guglielmo
Kammoun, Elias
Connors, Riley M. T.
Steiner, James F.
Harrison, Fiona A.
Buisson, Douglas J. K.
coley, Joel B.
Coughenour, Benjamin M.
Dauser, Thomas
Ewing, Melissa
Ingram, Adam
Kara, Erin
Nathan, Edward
Parra, Maxime
Stern, Daniel
Tomsick, John A.
author_facet Adegoke, Oluwashina K.
Garcia, Javier A.
Mastroserio, Guglielmo
Kammoun, Elias
Connors, Riley M. T.
Steiner, James F.
Harrison, Fiona A.
Buisson, Douglas J. K.
coley, Joel B.
Coughenour, Benjamin M.
Dauser, Thomas
Ewing, Melissa
Ingram, Adam
Kara, Erin
Nathan, Edward
Parra, Maxime
Stern, Daniel
Tomsick, John A.
contents IGR J17091-3624 is the only black hole X-ray binary candidate, aside from the well-studied black hole system GRS 1915+105, observed to exhibit a wide range of structured variability patterns in its light curves. In 2025, the source underwent a ``failed'' outburst: it brightened in the hard state but did not transition to the soft state before returning to quiescence within a few weeks. During this period, IGR J17091-3624 was observed by multiple ground- and space-based facilities. Here, we present results from six pointed NuSTAR observations obtained during the outburst. None of the NuSTAR light curves showed the exotic variability classes typical of the soft state in this source; however, we detected, for the first time, strong dips in the count rate during one epoch, with a total duration of $\sim4\,\mathrm{ks}$ as seen by NuSTAR. Through spectral and timing analysis of all six epochs, we investigate the hard-state spectral evolution and the nature of the dips. A clear evolution of the coronal properties with luminosity is observed over all six epochs, with clear signatures of relativistic disk reflection which remain largely unchanged across the first five epochs. The first five epochs also show a strong and stable quasi-periodic oscillation (QPO) feature in the power spectra. The dips observed in Epoch 5 are consistent with partial obscuration by ionized material with a column density $N_{\mathrm{H}} \approx 2.0 \times 10^{23}\,\mathrm{cm^{-2}}$. We discuss possible origins for this material and place constraints on the orbital parameters and distance of the system.
format Preprint
id arxiv_https___arxiv_org_abs_2510_14134
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle The 2025 Failed Outburst of IGR J17091-3624: Spectral Evolution and the Role of Ionized Absorbers
Adegoke, Oluwashina K.
Garcia, Javier A.
Mastroserio, Guglielmo
Kammoun, Elias
Connors, Riley M. T.
Steiner, James F.
Harrison, Fiona A.
Buisson, Douglas J. K.
coley, Joel B.
Coughenour, Benjamin M.
Dauser, Thomas
Ewing, Melissa
Ingram, Adam
Kara, Erin
Nathan, Edward
Parra, Maxime
Stern, Daniel
Tomsick, John A.
High Energy Astrophysical Phenomena
IGR J17091-3624 is the only black hole X-ray binary candidate, aside from the well-studied black hole system GRS 1915+105, observed to exhibit a wide range of structured variability patterns in its light curves. In 2025, the source underwent a ``failed'' outburst: it brightened in the hard state but did not transition to the soft state before returning to quiescence within a few weeks. During this period, IGR J17091-3624 was observed by multiple ground- and space-based facilities. Here, we present results from six pointed NuSTAR observations obtained during the outburst. None of the NuSTAR light curves showed the exotic variability classes typical of the soft state in this source; however, we detected, for the first time, strong dips in the count rate during one epoch, with a total duration of $\sim4\,\mathrm{ks}$ as seen by NuSTAR. Through spectral and timing analysis of all six epochs, we investigate the hard-state spectral evolution and the nature of the dips. A clear evolution of the coronal properties with luminosity is observed over all six epochs, with clear signatures of relativistic disk reflection which remain largely unchanged across the first five epochs. The first five epochs also show a strong and stable quasi-periodic oscillation (QPO) feature in the power spectra. The dips observed in Epoch 5 are consistent with partial obscuration by ionized material with a column density $N_{\mathrm{H}} \approx 2.0 \times 10^{23}\,\mathrm{cm^{-2}}$. We discuss possible origins for this material and place constraints on the orbital parameters and distance of the system.
title The 2025 Failed Outburst of IGR J17091-3624: Spectral Evolution and the Role of Ionized Absorbers
topic High Energy Astrophysical Phenomena
url https://arxiv.org/abs/2510.14134