A NICER look at thermonuclear X-ray bursts from Aql X-1

Author:

Güver Tolga12ORCID,Boztepe Tuğba3,Ballantyne D R4ORCID,Bostancı Z Funda12,Bult Peter56,Jaisawal Gaurava K7ORCID,Göğüş Ersin8,Strohmayer Tod E9,Altamirano Diego10ORCID,Guillot Sebastien11,Chakrabarty Deepto12

Affiliation:

1. Istanbul University, Science Faculty, Department of Astronomy and Space Sciences, Beyazıt 34119, İstanbul, Turkey

2. Istanbul University Observatory Research and Application Center, Istanbul University 34119, İstanbul, Turkey

3. Istanbul University, Graduate School of Sciences, Department of Astronomy and Space Sciences, Beyazıt 34119, İstanbul, Turkey

4. Center for Relativistic Astrophysics, School of Physics, Georgia Institute of Technology, 837 State Street, Atlanta, GA 30332, USA

5. Department of Astronomy, University of Maryland, College Park, MD 20742, USA

6. Astrophysics Science Division, NASA Goddard Space Flight Center, Greenbelt, MD 20771, USA

7. National Space Institute, Technical University of Denmark, Elektrovej 327-328, DK-2800 Lyngby, Denmark

8. Faculty of Engineering and Natural Sciences, Sabancı University, Orhanlı-Tuzla 34956, İstanbul, Turkey

9. Astrophysics Science Division and Joint Space-Science Institute, NASA’s Goddard Space Flight Center, Greenbelt, MD 20771, USA

10. School of Physics and Astronomy, University of Southampton, Southampton SO17 1BJ, UK

11. IRAP, UPS-OMP, CNRS, CNES, 9 avenue du Colonel Roche, BP 44346, F-31028 Toulouse Cedex 4, France

12. MIT Kavli Institute for Astrophysics and Space Research, Massachusetts Institute of Technology, Cambridge, MA 02139, USA

Abstract

ABSTRACT We present spectral and temporal properties of all the thermonuclear X-ray bursts observed from Aql X-1 by the Neutron Star Interior and Composition Explorer (NICER) between 2017 July and 2021 April. This is the first systematic investigation of a large sample of type I X-ray bursts from Aql X-1 with improved sensitivity at low energies. We detect 22 X-ray bursts including two short recurrence burst events in which the separation was only 451 s and 496 s. We perform time resolved spectroscopy of the bursts using the fixed and scaled background (fa method) approaches. We show that the use of a scaling factor to the pre-burst emission is the statistically preferred model in about 68 per cent of all the spectra compared to the fixed background approach. Typically the fa values are clustered around 1–3, but can reach up to 11 in a burst where photospheric radius expansion is observed. Such fa values indicate a very significant increase in the pre-burst emission especially at around the peak flux moments of the bursts. We show that the use of the fa factor alters the best-fitting spectral parameters of the burst emission. Finally, we employed a reflection model instead of scaling the pre-burst emission. We show that reflection models also do fit the spectra and improve the goodness of the fits. In all cases, we see that the disc is highly ionized by the burst emission and the fraction of the reprocessed emission to the incident burst flux is typically clustered around 20 per cent.

Funder

NASA

GSFC

Publisher

Oxford University Press (OUP)

Subject

Space and Planetary Science,Astronomy and Astrophysics

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