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Spectral Changes in the Hyperluminous Pulsar in NGC 5907 as a Function of Super-Orbital Phase

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arxiv 1610.00258 v1 pith:2KNTIP3C submitted 2016-10-02 astro-ph.HE

classification astro-ph.HE
keywords accretiondiskfunctionphasesignificantlyaroundchangesdata
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We present broad-band, multi-epoch X-ray spectroscopy of the pulsating ultra-luminous X-ray source (ULX) in NGC 5907. Simultaneous XMM-Newton and NuSTAR data from 2014 are best described by a multi-color black-body model with a temperature gradient as a function of accretion disk radius significantly flatter than expected for a standard thin accretion disk (T(r) ~ r^{-p}, with p=0.608^{+0.014}_{-0.012}). Additionally, we detect a hard power-law tail at energies above 10 keV, which we interpret as being due to Comptonization. We compare this observation to archival XMM-Newton, Chandra, and NuSTAR data from 2003, 2012, and 2013, and investigate possible spectral changes as a function of phase over the 78d super-orbital period of this source. We find that observations taken around phases 0.3-0.4 show very similar temperature profiles, even though the observed flux varies significantly, while one observation taken around phase 0 has a significantly steeper profile. We discuss these findings in light of the recent discovery that the compact object is a neutron star and show that precession of the accretion disk or the neutron star can self-consistently explain most observed phenomena.

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Cited by 2 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. A new pulsating neutron star in the Ultraluminous X-ray source NGC 4559 X7?

    astro-ph.HE 2025-02 conditional novelty 6.0 of 10

    NGC 4559 X7 shows a marginal 2.6-2.7 second pulsation candidate in two XMM-Newton observations, which if confirmed would reveal an extreme spin-down neutron star ULX.

  2. Gravitational Waves from Accretion Disks: Turbulence, Mode Excitation and Prospects for Future Detectors

    gr-qc 2025-02 conditional novelty 6.0 of 10

    Turbulent accretion disks can stochastically excite black hole quasinormal ringing, but the resulting gravitational-wave background is below the reach of near-term detectors.

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