Published April 2023 | Version Published
Journal Article Open

X-ray luminosity function of high-mass X-ray binaries: Studying the signatures of different physical processes using detailed binary evolution calculations

  • 1. ROR icon University of Geneva
  • 2. ROR icon Norwegian University of Science and Technology
  • 3. ROR icon Institute of Space Sciences
  • 4. ROR icon Institut d'Estudis Espacials de Catalunya
  • 5. ROR icon California Institute of Technology
  • 6. ROR icon University of Arkansas at Fayetteville
  • 7. ROR icon University of Crete
  • 8. ROR icon Harvard-Smithsonian Center for Astrophysics
  • 9. ROR icon FORTH Institute of Astrophysics
  • 10. ROR icon National Observatory of Athens
  • 11. ROR icon Northwestern University
  • 12. ROR icon University of Florida

Abstract

Context. Many physical processes taking place during the evolution of binary stellar systems remain poorly understood. The ever-expanding observational sample of X-ray binaries (XRBs) makes them excellent laboratories for constraining binary evolution theory. Such constraints and useful insights can be obtained by studying the effects of various physical assumptions on synthetic X-ray luminosity functions (XLFs) and comparing them with observed XLFs. Aims. In this work we focus on high-mass X-ray binaries (HMXBs) and study the effects on the XLF of various, poorly constrained assumptions regarding physical processes, such as the common-envelope phase, core collapse, and wind-fed accretion. Methods. We used the new binary population synthesis code POSYDON, which employs extensive precomputed grids of detailed stellar structure and binary evolution models, to simulate the entire evolution of binaries. We generated 96 synthetic XRB populations corresponding to different combinations of model assumptions, including different prescriptions for supernova kicks, supernova remnant masses, common-envelope evolution, circularization at the onset of Roche-lobe overflow, and observable wind-fed accretion. Results. The generated HMXB XLFs are feature-rich, deviating from the commonly assumed single power law. We find a break in our synthetic XLF at luminosity ∼10³⁸ erg s⁻¹, similar to observed XLFs. However, we also find a general overabundance of XRBs (up to a factor of ∼10 for certain model parameter combinations) driven primarily by XRBs with black hole accretors. Assumptions about the transient behavior of Be XRBs, asymmetric supernova kicks, and common-envelope physics can significantly affect the shape and normalization of our synthetic XLFs. We find that less well-studied assumptions regarding the circularization of the orbit at the onset of Roche-lobe overflow and criteria for the formation of an X-ray-emitting accretion disk around wind-accreting black holes can also impact our synthetic XLFs and reduce the discrepancy with observations. Conclusions. Our synthetic XLFs do not always agree well with observations, especially at intermediate X-ray luminosities, which is likely due to uncertainties in the adopted physical assumptions. While some model parameters leave distinct imprints on the shape of the synthetic XLFs and can reduce this deviation, others do not have a significant effect overall. Our study reveals the importance of large-scale parameter studies, highlighting the power of XRBs in constraining binary evolution theory.

Additional Information

© The Authors 2023. Open Access article, published by EDP Sciences, under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0), which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited. This article is published in open access under the Subscribe to Open model. Subscribe to A&A to support open access publication. The authors thank the anonymous referee for their constructive comments that helped improve the manuscript. This work was supported by the Swiss National Science Foundation Professorship Grant (PP00P2_176868; PI: Fragos). This work was also supported by the European Union's Horizon 2020 research and innovation program under the Marie Sklodowska-Curie RISE action, grant agreement No. 873089 (ASTROSTAT-II). D.M. acknowledges support from the European Research Council (ERC) under the European Union's Horizon 2020 research and innovation programme (grant agreement No. 101002352). K.K. acknowledges support from the Federal Commission for Scholarships for Foreign Students for the Swiss Government Excellence Scholarship (ESKAS No. 2021.0277). E.Z. acknowledges funding support from the European Research Council (ERC) under the European Union's Horizon 2020 research and innovation programme (Grant agreement No. 772086).

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Identifiers

Eprint ID
121294
Resolver ID
CaltechAUTHORS:20230502-957335100.4

Funding

Swiss National Science Foundation (SNSF)
PP00P2_176868
Marie Curie Fellowship
873089
European Research Council (ERC)
101002352
State Secretariat for Education, Research and Innovation (SERI)
2021.0277
European Research Council (ERC)
772086

Dates

Created
2023-05-05
Created from EPrint's datestamp field
Updated
2023-05-05
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