Published February 2024 | Version Published
Journal Article Open

Measuring black hole spins through X-ray reflection spectroscopy and the relativistic precession model: the case of XTE J1859+226

  • 1. ROR icon Fudan University
  • 2. School of Natural Sciences and Humanities, New Uzbekistan University, Tashkent 100007, Uzbekistan
  • 3. ROR icon Harvard-Smithsonian Center for Astrophysics
  • 4. ROR icon California Institute of Technology
  • 5. ROR icon University of Erlangen-Nuremberg

Abstract

The development of techniques to measure accurately black hole spins is crucial to study the physics and astrophysics of these objects. X-ray reflection spectroscopy is currently the most popular method to estimate the spins of accreting black holes; so far it has provided a spin measurement of about 40 stellar-mass black holes in X-ray binaries and 40 supermassive black holes in active galactic nuclei. The relativistic precession model (RPM) is another method to measure the spins of stellar-mass black holes: it requires the measurement of the frequencies of three simultaneous quasi-periodic oscillations and can potentially provide precise estimates of the black hole mass and spin. However, the two methods do not seem to provide consistent results when applied to the same sources, which questions the reliability and accuracy of these measurements. Recently, the RPM has been applied to infer the spin of the black hole in XTE J1859+226. The authors found a* = 0.149 ± 0.005 (68  per cent CL). There are no other spin measurements of this source. We looked for archived RXTE observations of XTE J1859+226 with blurred reflection features and found 23 spectra suitable for measuring the spin. We employed two different models with relxill and relxillD and obtained a higher spin value from all these fits. From simultaneous fitting of seven spectra of higher quality, we found $a_* = 0.986^{+0.001}_{-0.004}$ and a* = 0.987 ± 0.003 (90  per cent CL, statistical) with relxill and relxillD, respectively. Our results confirm the discrepancy between the spin measurements inferred from the two techniques.

Copyright and License

This is an Open Access article distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0/), which permits unrestricted reuse, distribution, and reproduction in any medium, provided the original work is properly cited.

Acknowledgement

This work was supported by the National Natural Science Foundation of China (NSFC), Grant No. 12250610185, 11973019, and 12261131497, the Shanghai Municipal Education Commission, Grant No. 2019-01-07-00-07-E00035, the Natural Science Foundation of Shanghai, Grant No. 22ZR1403400, and Fudan University, Grant No. JIH1512604. GM acknowledges also the support from the China Scholarship Council (CSC), Grant No. 2020GXZ016647.

Data Availability

This work used the data and software provided by the High Energy Astrophysics Science Archive Research Center (HEASARC), which is a service of the Astrophysics Science Division at NASA/GSFC.

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Additional details

Related works

Is new version of
Discussion Paper: arXiv:2309.05018 (arXiv)

Funding

National Natural Science Foundation of China
12250610185
National Natural Science Foundation of China
11973019
National Natural Science Foundation of China
12261131497
Shanghai Municipal Education Commission
2019-01-07-00-07-E00035
National Natural Science Foundation of China
22ZR1403400
Fudan University
JIH1512604
China Scholarship Council
2020GXZ016647

Dates

Available
2023-12-20
Published

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