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Black Hole

Lensing of space time around a black hole. At Oxford we study black holes observationally and theoretically on all size and time scales - it is some of our core work.

Credit: ALAIN RIAZUELO, IAP/UPMC/CNRS. CLICK HERE TO VIEW MORE IMAGES.

Dr Alexander Mushtukov

Visitor

Research theme

  • Astronomy and astrophysics
  • Particle astrophysics & cosmology

Sub department

  • Astrophysics

Research groups

  • Pulsars, transients and relativistic astrophysics
alexander.mushtukov@physics.ox.ac.uk
Denys Wilkinson Building, room 465
Personal Website
  • About
  • Publications

RX J0440.9+4431: another supercritical X-ray pulsar

Monthly Notices of the Royal Astronomical Society Oxford University Press (OUP) 524:4 (2023) 5213-5224

Authors:

Alexander Salganik, Sergey S Tsygankov, Victor Doroshenko, Sergey V Molkov, Alexander A Lutovinov, Alexander A Mushtukov, Juri Poutanen
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Complex variations in X-ray polarization in the X-ray pulsar LS V +44 17/RX J0440.9+4431

Astronomy & Astrophysics EDP Sciences 677 (2023) A57-A57

Authors:

Victor Doroshenko, Juri Poutanen, Jeremy Heyl, Sergey S Tsygankov, Ilaria Caiazzo, Roberto Turolla, Alexandra Veledina, Martin C Weisskopf, Sofia V Forsblom, Denis González-Caniulef, Vladislav Loktev, Christian Malacaria, Alexander A Mushtukov, Valery F Suleimanov, Alexander A Lutovinov, Ilya A Mereminskiy, Sergey V Molkov, Alexander Salganik, Andrea Santangelo, Andrei V Berdyugin, Vadim Kravtsov, Anagha P Nitindala, Iván Agudo, Lucio A Antonelli, Matteo Bachetti

Abstract:

We report on \ixpe observations of the Be-transient X-ray pulsar LS V +44 17/RX J0440.9+4431 at two luminosity levels during the giant outburst in January--February 2023. Considering the observed spectral variability and changes in the pulse profiles, the source was likely caught in super- and sub-critical states with significantly different emission region geometry, associated with the presence of accretion columns and hot spots, respectively. We focus here on the pulse-phase resolved polarimetric analysis and find that the observed dependencies of the polarization degree and polarization angle (PA) on pulse phase are indeed drastically different for the two observations. The observed differences, if interpreted within the framework of the rotating vector model (RVM), imply dramatic variations of the spin axis inclination and the position angle and the magnetic colatitude by tens of degrees within just a few days separating the observations. We suggest that the apparent changes in the observed PA phase dependence are predominantly related to the presence of a polarized unpulsed component in addition to the polarized radiation associated with the pulsar itself. We show that the observed PA phase dependence in both observations can then be explained with a single set of RVM parameters defining the pulsar's geometry. We also suggest that the additional polarized component is likely produced by scattering of the pulsar radiation off the equatorial disk wind.Comment: 9 pages, 5 figures, submitted to A&
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X-ray polarimetry of X-ray pulsar X Persei: another orthogonal rotator?

Monthly Notices of the Royal Astronomical Society Oxford University Press (OUP) 524:2 (2023) 2004-2014

Authors:

AA Mushtukov, SS Tsygankov, J Poutanen, V Doroshenko, A Salganik, E Costa, A Di Marco, J Heyl, F La Monaca, AA Lutovinov, IA Mereminsky, A Papitto, AN Semena, AE Shtykovsky, VF Suleimanov, SV Forsblom, D González-Caniulef, C Malacaria, RA Sunyaev, I Agudo, LA Antonelli, M Bachetti, L Baldini, WH Baumgartner, R Bellazzini, S Bianchi, SD Bongiorno, R Bonino, A Brez, N Bucciantini, F Capitanio, S Castellano, E Cavazzuti, C-T Chen, S Ciprini, A De Rosa, E Del Monte, L Di Gesu, N Di Lalla, I Donnarumma, M Dovčiak, SR Ehlert, T Enoto, Y Evangelista, S Fabiani, R Ferrazzoli, JA Garcia, S Gunji, K Hayashida, W Iwakiri, SG Jorstad, P Kaaret, V Karas, F Kislat, T Kitaguchi, JJ Kolodziejczak, H Krawczynski, L Latronico, I Liodakis, S Maldera, A Manfreda, F Marin, AP Marscher, HL Marshall, F Massaro, G Matt, I Mitsuishi, T Mizuno, F Muleri, M Negro, C-Y Ng, SL O’Dell, N Omodei, C Oppedisano, GG Pavlov, AL Peirson, M Perri, M Pesce-Rollins, P-O Petrucci, M Pilia, A Possenti, S Puccetti, BD Ramsey, J Rankin, A Ratheesh, OJ Roberts, RW Romani, C Sgrò, P Slane, P Soffitta, G Spandre, DA Swartz, T Tamagawa, F Tavecchio, R Taverna, Y Tawara, AF Tennant, NE Thomas, F Tombesi, A Trois, R Turolla, J Vink, MC Weisskopf, K Wu, F Xie, S Zane
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X-ray pulsar GRO J1008−57 as an orthogonal rotator

Astronomy & Astrophysics EDP Sciences 675 (2023) A48-A48

Authors:

Sergey S Tsygankov, Victor Doroshenko, Alexander A Mushtukov, Juri Poutanen, Alessandro Di Marco, Jeremy Heyl, Fabio La Monaca, Sofia V Forsblom, Christian Malacaria, Herman L Marshall, Valery F Suleimanov, Jiri Svoboda, Roberto Taverna, Francesco Ursini, Iván Agudo, Lucio A Antonelli, Matteo Bachetti, Luca Baldini, Wayne H Baumgartner, Ronaldo Bellazzini, Stefano Bianchi, Stephen D Bongiorno, Raffaella Bonino, Alessandro Brez, Niccolò Bucciantini

Abstract:

X-ray polarimetry is a unique way to probe geometrical configuration of highly-magnetized accreting neutron stars (X-ray pulsars). GRO J1008$-$57 is the first transient X-ray pulsar observed at two different flux levels by the Imaging X-ray Polarimetry Explorer (IXPE) during its outburst in November 2022. The polarization properties were found to be independent of the source luminosity, with the polarization degree varying between non-detection to about 15% over the pulse phase. Fitting the phase-resolved spectro-polarimetric data with the rotating vector model allowed us to estimate the pulsar inclination (130 deg, which is in good agreement with the orbital inclination), the position angle (75 deg) of the pulsar spin axis, and the magnetic obliquity (74 deg). This makes GRO J1008$-$57 the first confidently identified X-ray pulsar as a nearly orthogonal rotator. The results are discussed in the context of the neutron star atmosphere models and theories of pulsars' axis alignment.Comment: 11 pages, 7 figures, submitted to A&A. arXiv admin note: text overlap with arXiv:2209.0244
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A polarimetrically oriented X-ray stare at the accreting pulsar EXO 2030+375

Astronomy & Astrophysics EDP Sciences 675 (2023) A29-A29

Authors:

Christian Malacaria, Jeremy Heyl, Victor Doroshenko, Sergey S Tsygankov, Juri Poutanen, Sofia V Forsblom, Fiamma Capitanio, Alessandro Di Marco, Yujia Du, Lorenzo Ducci, Fabio La Monaca, Alexander A Lutovinov, Herman L Marshall, Ilya A Mereminskiy, Sergey V Molkov, Alexander A Mushtukov, Mason Ng, Pierre-Olivier Petrucci, Andrea Santangelo, Andrey E Shtykovsky, Valery F Suleimanov, Iván Agudo, Lucio A Antonelli, Matteo Bachetti, Luca Baldini

Abstract:

Accreting X-ray pulsars (XRPs) are presumably ideal targets for polarization measurements, as their high magnetic field strength is expected to polarize the emission up to a polarization degree of ~80%. However, such expectations are being challenged by recent observations of XRPs with the Imaging X-ray Polarimeter Explorer (IXPE). Here we report on the results of yet another XRP, EXO 2030+375, observed with IXPE and contemporarily monitored with Insight-HXMT and SRG/ART-XC. In line with recent results obtained with IXPE for similar sources, analysis of the EXO 2030+375 data returns a low polarization degree of 0%-3% in the phase-averaged study and variation in the range 2%-7% in the phase-resolved study. Using the rotating vector model we constrain the geometry of the system and obtain a value for the magnetic obliquity of ~$60^{\circ}$. Considering also the estimated pulsar inclination of ~$130^{\circ}$, this indicates that the magnetic axis swings close to the observer line of sight. Our joint polarimetric, spectral and timing analysis hint to a complex accreting geometry where magnetic multipoles with asymmetric topology and gravitational light bending significantly affect the observed source behavior.Comment: A&A accepted. Proofs versio
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