English

The Radiative Efficiency of a Radiatively Inefficient Accretion Flow

High Energy Astrophysical Phenomena 2015-04-30 v3 Solar and Stellar Astrophysics

Abstract

A recent joint XMM-Newton/Nuclear Spectroscopic Telescope Array (NuSTAR) observation of the accreting neutron star Cen X-4 (LX1033 erg s1L_{\rm X}\sim10^{33}{\rm~erg~s}^{-1}) revealed a hard power-law component (Γ1\Gamma\sim1-1.51.5) with a relatively low cut-off energy (~10 keV), suggesting bremsstrahlung emission. The physical requirements for bremsstrahlung combined with other observed properties of Cen X-4 suggest the emission comes from a boundary layer rather than the accretion flow. The accretion flow itself is thus undetected (with an upper limit of Lflow0.3LXL_{\rm flow}\lesssim0.3 L_{\rm X}). A deep search for coherent pulsations (which would indicate a strong magnetic field) places a 6 per cent upper limit on the fractional amplitude of pulsations, suggesting the flow is not magnetically regulated. Considering the expected energy balance between the accretion flow and the boundary layer for different values of the neutron star parameters (size, magnetic field, and spin) we use the upper limit on LflowL_{\rm flow} to set an upper limit of ε0.3\varepsilon\lesssim0.3 for the intrinsic radiative efficiency of the accretion flow for the most likely model of a fast-spinning, non-magnetic neutron star. The non-detection of the accretion flow provides the first direct evidence that this flow is indeed 'radiatively inefficient', i.e. most of the gravitational potential energy lost by the flow before it hits the star is not emitted as radiation.

Keywords

Cite

@article{arxiv.1410.3760,
  title  = {The Radiative Efficiency of a Radiatively Inefficient Accretion Flow},
  author = {C. R. D'Angelo and J. K. Fridriksson and C. Messenger and A. Patruno},
  journal= {arXiv preprint arXiv:1410.3760},
  year   = {2015}
}

Comments

15 pages, 3 figures - minor modifications to match published version